septum-mec/actions/stimulus-spike-lfp-response.../data/20_stimulus-spike-lfp-respo...

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{
"cells": [
{
"cell_type": "code",
"execution_count": 1,
"metadata": {},
"outputs": [],
"source": [
"%load_ext autoreload\n",
"%autoreload 2"
]
},
{
"cell_type": "code",
"execution_count": 2,
"metadata": {},
"outputs": [],
"source": [
"import os\n",
"import expipe\n",
"import pathlib\n",
"import numpy as np\n",
"import spatial_maps.stats as stats\n",
"import septum_mec\n",
"import septum_mec.analysis.data_processing as dp\n",
"import septum_mec.analysis.registration\n",
"import head_direction.head as head\n",
"import spatial_maps as sp\n",
"import speed_cells.speed as spd\n",
"import re\n",
"import joblib\n",
"import multiprocessing\n",
"import shutil\n",
"import psutil\n",
"import pandas as pd\n",
"import matplotlib.pyplot as plt\n",
"import matplotlib\n",
"import seaborn as sns\n",
"from distutils.dir_util import copy_tree\n",
"from neo import SpikeTrain\n",
"import scipy\n",
"from functools import reduce\n",
"from tqdm.notebook import tqdm_notebook as tqdm\n",
"tqdm.pandas()\n",
"\n",
"from spikewaveform.core import calculate_waveform_features_from_template, cluster_waveform_features\n",
"\n",
"from septum_mec.analysis.plotting import violinplot, despine\n",
"\n",
"from septum_mec.analysis.statistics import load_data_frames, make_paired_tables, make_statistics_table"
]
},
{
"cell_type": "markdown",
"metadata": {},
"source": [
"## chose where to sample LFP"
]
},
{
"cell_type": "code",
"execution_count": 3,
"metadata": {},
"outputs": [],
"source": [
"#################################################\n",
"\n",
"# lfp_location = ''\n",
"# lfp_location = '-other-tetrode'\n",
"lfp_location = '-other-drive'\n",
"\n",
"##################################################"
]
},
{
"cell_type": "code",
"execution_count": 4,
"metadata": {},
"outputs": [],
"source": [
"%matplotlib inline\n",
"plt.rc('axes', titlesize=12)\n",
"plt.rcParams.update({\n",
" 'font.size': 12, \n",
" 'figure.figsize': (6, 4), \n",
" 'figure.dpi': 150\n",
"})\n",
"\n",
"output_path = pathlib.Path(\"output\") / (\"stimulus-spike-lfp-response\" + lfp_location)\n",
"(output_path / \"statistics\").mkdir(exist_ok=True, parents=True)\n",
"(output_path / \"figures\").mkdir(exist_ok=True, parents=True)\n",
"output_path.mkdir(exist_ok=True)"
]
},
{
"cell_type": "code",
"execution_count": 5,
"metadata": {},
"outputs": [],
"source": [
"project_path = dp.project_path()\n",
"project = expipe.get_project(project_path)\n",
"actions = project.actions"
]
},
{
"cell_type": "code",
"execution_count": 6,
"metadata": {},
"outputs": [
{
"name": "stdout",
"output_type": "stream",
"text": [
"Number of sessions above threshold 194\n",
"Number of animals 4\n",
"Number of individual gridcells 139\n",
"Number of gridcell recordings 230\n"
]
}
],
"source": [
"data, labels, colors, queries = load_data_frames()"
]
},
{
"cell_type": "code",
"execution_count": 7,
"metadata": {},
"outputs": [],
"source": [
"lfp_action = actions['stimulus-spike-lfp-response' + lfp_location]\n",
"lfp_results = pd.read_csv(lfp_action.data_path('results'))"
]
},
{
"cell_type": "code",
"execution_count": 8,
"metadata": {},
"outputs": [],
"source": [
"# lfp_results has old unit id's but correct on (action, unit_name, channel_group)\n",
"lfp_results = lfp_results.drop('unit_id', axis=1)"
]
},
{
"cell_type": "code",
"execution_count": 9,
"metadata": {},
"outputs": [],
"source": [
"data = data.merge(lfp_results, how='left')"
]
},
{
"cell_type": "code",
"execution_count": 10,
"metadata": {},
"outputs": [],
"source": [
"data['stim_strength'] = data.stim_p_max / data.theta_peak"
]
},
{
"cell_type": "code",
"execution_count": 11,
"metadata": {},
"outputs": [],
"source": [
"keys = [\n",
" 'theta_energy',\n",
" 'theta_peak',\n",
" 'theta_freq',\n",
" 'theta_half_width',\n",
" 'theta_vec_len',\n",
" 'theta_ang',\n",
" 'stim_energy',\n",
" 'stim_half_width',\n",
" 'stim_p_max',\n",
" 'stim_strength',\n",
" 'stim_vec_len',\n",
" 'stim_ang'\n",
"]"
]
},
{
"cell_type": "code",
"execution_count": 12,
"metadata": {},
"outputs": [],
"source": [
"results, labels = make_paired_tables(data, keys)"
]
},
{
"cell_type": "code",
"execution_count": 13,
"metadata": {},
"outputs": [
{
"data": {
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],
"text/plain": [
" entity unit_idnum channel_group date Baseline I 11 Hz \\\n",
"51 1833 8 0 20719 0.214949 NaN \n",
"85 1833 13 0 20719 NaN 0.052683 \n",
"86 1833 14 0 20719 NaN 0.025182 \n",
"58 1833 23 0 200619 0.233113 NaN \n",
"127 1833 26 0 200619 NaN NaN \n",
".. ... ... ... ... ... ... \n",
"139 1849 835 4 150319 NaN NaN \n",
"43 1849 851 5 60319 0.040082 NaN \n",
"65 1849 932 7 280219 0.025449 NaN \n",
"74 1849 937 7 280219 NaN 0.135503 \n",
"105 1849 939 7 280219 NaN NaN \n",
"\n",
" Baseline II 30 Hz \n",
"51 NaN NaN \n",
"85 0.291401 0.055222 \n",
"86 0.451846 NaN \n",
"58 NaN NaN \n",
"127 0.202562 0.049574 \n",
".. ... ... \n",
"139 NaN 0.027863 \n",
"43 NaN NaN \n",
"65 NaN NaN \n",
"74 NaN NaN \n",
"105 0.435251 NaN \n",
"\n",
"[137 rows x 8 columns]"
]
},
"execution_count": 13,
"metadata": {},
"output_type": "execute_result"
}
],
"source": [
"results['gridcell']['theta_peak']"
]
},
{
"cell_type": "code",
"execution_count": 14,
"metadata": {},
"outputs": [
{
"data": {
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"text/plain": [
"<Figure size 555x330 with 1 Axes>"
]
},
"metadata": {
"needs_background": "light"
},
"output_type": "display_data"
},
{
"data": {
"image/png": "iVBORw0KGgoAAAANSUhEUgAAAgkAAAFGCAYAAADghAzcAAAABHNCSVQICAgIfAhkiAAAAAlwSFlzAAAXEQAAFxEByibzPwAAADh0RVh0U29mdHdhcmUAbWF0cGxvdGxpYiB2ZXJzaW9uMy4xLjIsIGh0dHA6Ly9tYXRwbG90bGliLm9yZy8li6FKAAAgAElEQVR4nOydd3gc1fWw31UvluTeG7gcbGOD6d2mE3qJIaEaQg0QIISEH/AlIQmhJYHQAwQcSOghYEzvvdrGgIFjgwvutizbsiVZZXe/P+7s7kjeXbVdSZbO+zz77NyZe++cWa12zpx7SiAcDmMYhmEYhtGQjPYWwDAMwzCMjokpCYZhGIZhxMWUBMMwDMMw4mJKgmEYhmEYcTElwTAMwzCMuJiSYBiGYRhGXExJMAzDMAwjLqYkGIZhGIYRF1MSDMMwDMOIiykJhmEYhmHExZQEwzAMwzDiYkqCYRiGYRhxMSXBMAzDMIy4mJJgGIZhGEZcstpbAKNzIiITVPWLOPunAWd4zQGqurJNBWtAIjk7EiIyCvg9MBnoDawDvlbVA9pRrK0aEZkMvOk1/09Vb2jBHNPwvsuqGkiZcK0k2bWJyO+B33nNPVX1o7aVztjaMCXBSCkiUgL8AbiQDvz9EpH+wF+AvYFt2lmchIjIIOAjoKdvdz/gm/aRyDCMrkSH/RE3tlr+BpzV3kI0gf8ABwCL21uQRriYmILwFHA3sBmobDeJDMPoMpiSYKSazPYWoIlsLXKO895rgTNU1ZSDFKCqbwEdZonAMDoq5rhoGB2bQu99tSkIhmG0NaYkGEbHJvI/WteuUhiG0SWx5QYjJTTwmo7sC3ubb6vq5ATjhgNXAIcBg4By4GtgGvAvVQ3HG+eNzQamAlOACbi1+/XAHNz6/YOqWtNgzDRi0RUAw3xy/ktVpzbo3w84BzgQEO8cdcBa4FPgMeC/yeRsLt5nsrDBbr+ci1V1uNc3su8y4HngDmAf3PLEd8CVqvqab+5mf2Zx5DsQ55i6M9AXWAY8C1yP+2zWeV3PVNVpTb7w+ufYF+ePsQ8uomMt8DbwV1X9VES+xf096v3NRGQq8KDX7AEcA/wfzjm1DPjMu/Y9aCS6QUTycZ/VacAoIA/4FvgncG8Tr6MIOBn4qTdHH+9aPgP+qarPJBnb6r+VYbQWsyQY7ckJOC/9nwPbArm4H9FJuB/650UkriIrIiNxP5b3AgfjPP6zvfEHAfcAc0REWiqciJyBu1n/ERd+OMCTsRAY6sn/JPCsiLS3j8MQ4H3gEKAAKAF2wikKQOs/MxHJEpF7gdeA43CfQR4wAvgl8Dnuxt0qROS3wDu4m+MAT8b+wEnAhyLyiyZOdT5O2RQgx5ujm6puboIMw4BZwF3AnjhFpRuwC8559BXctSebY3dgLu5znQQM9F3LkcD/ROS/IpIbZ2zav9+G0RRMSTBSxT3AROA5376J3uvsBGPuwDmP3YmzJOwPXA1UeMd/hLv51MMLX3wXGAPUeOOPAHbDPTn+CwgC2wFvisgA3/DfejLN9NorfHL+1neOA3A3mHzcE+gfPHn2wCkHd3rnBjgqyTW2hOU+meLJeXicMZfibmQ3AfvibrB/VtVF3vW05jOL8BecVQVcVMj5uBvo8bib5iCc0tRiRORy4FqvuQpnIdkLOBT3BB8A/k7TwlavA5bgLEf7AL8C/toEGQpxVovtvF3PAkfj/vZnA/NwlqUpSebYDngLp7yFgIe8OfbERf+o1/V4XESQf2wq/laGkRJsucFICV5SpJUiUubb93kjw6qBA1T1A9++t0TkDeBDr30G7sbn5x7c01g5cJCqftrg+HQReQqYjnsSvQX4iSfTD8APIrLJ61uTQM4/eO91wKGq+lmD40+LyEvElKIpwD+SXm0T8UzInwM0Qc4IGTil4Grfvqd82y3+zDw5JgAXec2vgX1Vtcw3/n8icitwSRMuMS5eToiIgrAA2EdVV/i6vOJ95k/gLAONEcb97SI5Jd5voihXAcO87etU9RrfsY9F5DHgVdwNPxH34ywNYeAkVfX/LT7yPusPgO2B80Tk5ohCRyv/VoaRSsySYLQndzRQEADwssDN8prb+ZccRGQ07okM3A94wx/QyBwzcE9cAFNEZGBThRKRAtyyQhnwXBwFwX+O9V5zUFPnTyN3x9uZos/sTGJhoxc0UBAi/ApnXm8pPyMWzXFBAwUhIuNTwANNnO8tn4LQJEQkg5i1RGngZ+PJUAGcjrMQxJtjLC5JF8DDDRSEyBwbcVYzcL/DB3tj0/79NozmYEqC0Z68kOTYfO89A7e+HuFwYvHtrzZx/gycT0GTUNVKVd1VVXsBP26keySt9Bbrym3MMlVdmuBYKj6zI733Jar6TryBqloH3Ne4qAk5yntfRnI5m2qxaUnK4V1w6/4Aj6tqMF4nVf0O5zcRj6N82w8lOdcLuOWjbqoa+dzS/v02jOZgyw1Ge5LopgYuq2AE//d0om97VjP8trZtakc/qhqC6Dr1Njgnve2AHXDr3EO8ru2tcC9JcqxVn5nnlBn5/BpbQtrCMtQURCSA8+AHmNlItMhsXPRGdiPTJvtMErGdb7uxa/2E+Dfn0b7tWXGOA1GlquE52vT7bRiNYUqC0Z5sbGI/f2a83i08V4/mDhCRwcDlOPNvoh/hEO2vIIBbv05Eaz+z3sSusbSRMctbca6In0HSc6hqnef70q+ROZN9Jonwz7m2kb6rGpkjpKrrEvRJRJt9vw2jKZiSYLQnLckt4P/O7oZ7omwKa5pzEhE5DOf4V+jbvREXsjkXlyPhNeB/xFIntyfJPsvWfmb+tffGUhm3NG7f74jYFKWrKd+dlny//GMau9ZEn2Nrflfb5PttGE3FlARja8PvMLdMVVv65JoQLwTtMZyCUItLEvQooA3N4CLSLdXnTwOt/czW4ULuMnHJk5LR0ifaMtwNOkDMJyAu3vJHup6c/c6SSeWgfmVOP5HPO0NEejTTmpD277dhNAdTEoytja9823sATyfq6CWzmQwsAt5P4tjXkFOJOUv+SVX/EK+TlwSnMZN3R6BVn5ln3v8Ct16+s4hkRHw14rBjSwRU1RoR+RpnlZnYSPdxpM9R1B+dsSv1w0gbkuhav/Zt74DLl7AFXiTFfNyyyLOq+nva5vttGE2mI6ylGp2LRDePVPGyb/uCRvreDNyAswo09ClIJudI3/bMhL1cUqVI1r2OrHCn4jOb4b33IxbpEI/Tmy1djEjOiYEisn+SfmckOdYqvFwUC7zmySISN6uiiPTBJQCLx2u+7ZOTnG433Ge8I7Hw0lR9vw0jJZiSYKSa6shGOkzxXs6CSOjZQSJyVbx+Xua+fb3m57gMdvHkjCej33HuRwnm3w243bervUMgE5Kiz+xuIFKF8k4vbXHD8WfhMgO2lHuIRbXcJSJbOPF5mTAvbsU5msIt3vtgT456vgleTYUHSZCW2cvzEcmtcZaIHNKwj2eFustr1uGye6by+20YKaEjP/10ekRkOoCqHt1Y360I/5run0XkISCoqrNTeI6zcT/CxcB1IjIJl7J3MS4//im4dLfgHOnOjRNSF5Gzl4j8Hy4mvVJVv8aZmK/CrY//3Euu9F+c8jAIlxr3p9QPwSsWkUAqCz2lmFZ9Zqq6QkQuxN0cBwMzReRGXBbDQlzGvzNbI6CqLvYKhd2AC0X8XERuwjmJ5uOiTC6g/ueejs/7Ltz17I27plEichvusxqFSxW+Ey59eGGCOc7G5WnIA2aIyH249M4VuOWSX3lzAdygqt83GNva77dhpASzJLQvI0aOHHkU7oeuU7yeeeaZazMzo7WOLgY+HThw4KzI8eOOOy5qKn7vvfdWJJonWT9VnffMM88UDxoUTXJ4CPA47kf5adwyQKCkpIT77rsvR1U/aTj/Pffc47+h/Rn4dNddd53rzT/7sssuizw9BnA3ihne/P/FmdSzJ02axIknnhiZI+fll18Opfrz3G233SYBDBo0aFiCPgDss88+hyabJxWfmao++Lvf/Y7s7GyAXrh02e/j6jacVVRUFDjzzNjHev311z/
"text/plain": [
"<Figure size 555x330 with 1 Axes>"
]
},
"metadata": {
"needs_background": "light"
},
"output_type": "display_data"
},
{
"data": {
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"text/plain": [
"<Figure size 555x330 with 1 Axes>"
]
},
"metadata": {
"needs_background": "light"
},
"output_type": "display_data"
},
{
"data": {
"image/png": "iVBORw0KGgoAAAANSUhEUgAAAgkAAAFGCAYAAADghAzcAAAABHNCSVQICAgIfAhkiAAAAAlwSFlzAAAXEQAAFxEByibzPwAAADh0RVh0U29mdHdhcmUAbWF0cGxvdGxpYiB2ZXJzaW9uMy4xLjIsIGh0dHA6Ly9tYXRwbG90bGliLm9yZy8li6FKAAAgAElEQVR4nOydd3xb1fXAv/K2M2wnzt7zxCGDQBhhhbASCJAChVKgEChQyiq0hVJKKW1/lNKWQgsUmlIIq2WkEEbYhE0CgezByU7I3svxlPT74z5Jz4osS7aG7dzv5+OP3n3v3vuOniW98849w+P3+7FYLBaLxWIJJyPdAlgsFovFYmmaWCXBYrFYLBZLRKySYLFYLBaLJSJWSbBYLBaLxRIRqyRYLBaLxWKJiFUSLBaLxWKxRMQqCRaLxWKxWCJilQSLxWKxWCwRsUqCxWKxWCyWiFglwWKxWCwWS0SskmCxWCwWiyUiVkmwWCwWi8USEaskWCwWi8ViiYhVEiwWi8VisUQkK90CWFKLiAxT1fkR9k8GLnOaXVR1U0oFC6MuOS3pRUR6A6uc5j9V9Zo0itPkEZG7gN84zVGqOrMBc6wGegEfqeqJiZKtsUR7byLyITAaqFTVvNRLZ0kUVkk4SBCRQuB3wHU04f+7iHQG/gIcC/RJszgWi8VyUNNkbxaWhPNX4Ip0CxEDzwInAWvSLYjFYrEc7Fgl4eAhM90CxEhzkdNiqRdVvQu4K81iWCwNxjouWiwWi8ViiYhVEiwWi8VisUTELje0cMI8kAP7/M5mnd7Sjhf7LcA4oBuwB1gMTAaeVFV/pHHO2GxgInA+MAxoB+wC5gFTgCdUtSpszGRC0RUAvVxyPqmqE8P6dwKuAk4GxDlHDbAdmAU8B/wvmpwNQUTmOe9pN9BJVSuj9P03xg/EB/RU1fVhx0uB65330B3wAN8CHwAPquriemTJBMYDlzsydQPKgUXAC8AkVa1owNtsNCLSA7gBGAv0BnKAjcAnwKOqOqOOcXdhPq+7VbXIcWT9KXAW0BOoBpYAzwOPRLv+MciYAVyEuX4jgAJgPTANuAfwOzIDXK6qk11jJ2M+r/OAI4DfO+1iYAPwoqr+IpboBuc93oj5X/YFKjGf4ftV9Z0Y30tP4IfAmZjr3cqR4yPMZ2l2lLHtMP+r8UB/5zpsAWZivqtvxiKDpWViLQmWSJyH+SG+FvOjlQt0wIQ0PQFME5GICqaI9Mf8cE4CTgU6AdnO+FOAR4F5IiINFU5ELsOE4f0eOBHo4sjYCnMjOQ94EXjFuZEmkied10Lg9Cgy5jpyALwfQUH4NbAAc40FI3uBs30NsEBE7hIRTx3zdwamA68A3yH0fyrCRIb8DZjt3DxSioj8EFiKUTKHAW2BPEy0yqXA5yLyT0eZjDbPcRiF5xZgEOb6FAJHA/cDXzo3uIbImA+8CjyNcZQtxly/vpgb5mLMdYyFp4BfAJ2dOfoA+2OU41TMtfol5lq1BtpjlPO3ReTuGOa4AlDgTuAwjMIckGMiMEtEbqtj7BnACozfxBGErkMPjJL/hoi8IiJtYnk/lpaHVRJaPo9inpJec+0b4fxdWceYhzBPtQ9jfqzGAL8Cypzjp2Oe7mrh3Lg+AUqBKmf8eOBIYALmBuvF/OB/ICJdXMPvdGT62mlvdMl5p+scJ2GsGfnADkxY5+mYG8d5zjkDVoqzorzHhvIsxmIB8P0o/c7E3NDA3ESCOE+Xv8M4ac7HKAXHAMcBP8H8aGdgnkBrWYGc8XkYa8MJzq6PgUsw1+Bc4G1nfynwan0340QiIhOBxzBKwSrgZ8DxmPd3FTDX6Xo1RpGsi8BNvC3wCOZzeAzG8rLB6TMMqPcmWgfPYz6bALOBH2Cu3/kY5asI+E8M8wwFLgQ+w/zPT8JEEj1R30ARGYGxWrTBWEgecMYfB9yBsVbdjrlh1zXHRODfmOu9F/gDxjI1GrgN2In5LN0jIueHjT0Zc42LMJaDOzHf9aMx1+NDp+vZwMtJULgtzQC73NDCcZIibRKRHa59c6MMAWPuPElVP3ft+1BEpgMBM/FlwJ/Cxj2KeZraA5yiqrPCjr8qIlMwP0xdME+DFzoyrQXWisg+p29VHXL+znmtAcaq6ldhx18SkbcIKUXnA/+M+m7jQFU3i8jbmBvMWSLSWlX3Reh6kfO6D3gpsFNEDgN+7TSfBq5Q1RrXuM+cZYrXMVaSO0XkhbClhzswihYYU/KNYed+2WUOH465xk/H907jR0S6YpQ0gPeBCapa5uoyw5HrKYyCNVFEnlfVtyJMl4NRos4MOz5DRN4AFmIsCxeJyI2qWh2HnBMwCiSYz8l5rvFfAFNE5O8Yi0J9ZGCUulNVtdzZ90GMojyEsbL5gLNU9W3Xsc+c78qnQEkd76MD5jsEsA04XlW/cXX52LlWn2MsFPeIyBRV9TuWlGcw13gBcLKqbnWN/QJ4RkTuBW7FKB5XYb7jloMIa0mwROKhMAUBAGc9NbC2Oci95CAiAzFPHAB3R1AQAnO8Tshkf75zY4kJESnAmEJ3AK9FUBDc59jlNLvFOn8cBCwD+RgLSbichYSeUqeoqtv0/DPM9247cE2YggCAc2O9ArMm7sF1s3LW0QPWkRXOfJH4OebpFIxfQCq4DnPjrgEuDVMQAHDe748xT8lgLCd18VIkBUJVVwHvOs22xJ90K3DOfRhfg0gKxk+BbyLsj8Rkl4IQEyIyBGMZAXg8TEEAQFUVc4Oui/MxVgCAW8MUhMAcC4B/Oc2ehJTLSzAKPcCVYQqCm18By53taP8rSwvFKgmWSLwR5dgy5zWDkDkd4AzMDQ1CP+D1zZ+BeVqOCVXdr6pHqGp74Lv1dA+klc6Ndf44eJWQEhJpyeE813mDSw2Of0HAj+GzMOWhFs6NcInTPNl16AiMnwfAf+t6glbVbZj16RJVvaTut5JQAorRYlXdUFcnVd2NMc8DnBBlOSSa094K13bM6+UiUoRZ/gB4VVW31yFjDfB4jNPGnWoZ830JEG1Z4zmMM2okAtaQKqdfXfwB4+tSoKqBz1Tgf7VbVb+sa6BzHQL/h0HxKPWWloFdbrBEYl2UY25veffnZ4Rre3Ycfol9Y+3oRlV9ACLSCvMk2Q/zlDQcs6YbWMdNuCKsqhUi8jzwI+A0EWmnqjtcXS52XtcSWtcF43Ve7Gyf7YreqA/3k/JA13adHuuOnAtjnL/ROFaloU5zWBzvrQCj9ET6zK2OMs69xBPP79ghrv4RLVEuvohxzm/jOH+AQa7tOpf/VLVcRBZg/HrCCXwWvolmyXAUxm1huwPf18I4/ldgvq91KoCWlodVEiyR2BtjP7fnfcR10xgorr9LbUSkO8bMfjZ1Kxk+kmspexKjJGRjrBqTHNm6ErKOPBMWgtnQa5QlIm1UdS8hKwKYJYumQjENv97FRFYSIvl6BHBf14gRIHXgvn7hN85wtsQ45544zh8uh09Vd9bTd3M9czTkc5Cy76uleWOVBEskGpJbwP1ZOpLQenh91LUWGhERGYfJtdDKtXsvxjS/CBNf/h7wMuapMSmo6gwRWQYMwCw5BDz1LyR0s3wybJj7Gj0OPBjHKQNLE031O+uW6y1MSF+sLK+/S8LIcW3Xp9TE+j1oyPclOEZEPPXk86jru9SYz0Jg7Hxq5yepj1X1d7G0JJrqD46l+eE2t6+PtibdUJwQy+cwCkI1JuHNfzE+Xv6wvq0Tff4IPIXJ1XCCiHR13nMgquELVV0a1t99jbwxRJlEwj1H+waMTxZuuTIb+N5Sgdt60KGevg192o6FQJKmDMz/MZpVo65cEDswUUIN+RzswDgu5jfh/5WlCWCVBEuicK9/H40r7C8cETkKY5JfjXHgi+YD4eYSQs6S/6eqv4vUyUlk1CnSsQTzNCYkMwPjY/AecLhz7KkI/VdiLAIFmGsUFRH5BcZBcoWqvufsdodCDsdYTOoa/x+M8+I3wDmJzj7pRlUrRWQ5JmPf4SKSFSlywyXbNZjwu9XA29H6Jhj3DfGwevoeXs/xxrDItX0EEDGroRPNMjTSMcxnoYvpJrl
"text/plain": [
"<Figure size 555x330 with 1 Axes>"
]
},
"metadata": {
"needs_background": "light"
},
"output_type": "display_data"
},
{
"data": {
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"text/plain": [
"<Figure size 555x330 with 1 Axes>"
]
},
"metadata": {
"needs_background": "light"
},
"output_type": "display_data"
},
{
"data": {
"image/png": "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
"text/plain": [
"<Figure size 555x330 with 1 Axes>"
]
},
"metadata": {
"needs_background": "light"
},
"output_type": "display_data"
},
{
"data": {
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"text/plain": [
"<Figure size 555x330 with 1 Axes>"
]
},
"metadata": {
"needs_background": "light"
},
"output_type": "display_data"
},
{
"data": {
"image/png": "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
"text/plain": [
"<Figure size 555x330 with 1 Axes>"
]
},
"metadata": {
"needs_background": "light"
},
"output_type": "display_data"
},
{
"data": {
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"text/plain": [
"<Figure size 555x330 with 1 Axes>"
]
},
"metadata": {
"needs_background": "light"
},
"output_type": "display_data"
},
{
"data": {
"image/png": "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
"text/plain": [
"<Figure size 555x330 with 1 Axes>"
]
},
"metadata": {
"needs_background": "light"
},
"output_type": "display_data"
},
{
"data": {
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"text/plain": [
"<Figure size 555x330 with 1 Axes>"
]
},
"metadata": {
"needs_background": "light"
},
"output_type": "display_data"
},
{
"data": {
"image/png": "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
"text/plain": [
"<Figure size 555x330 with 1 Axes>"
]
},
"metadata": {
"needs_background": "light"
},
"output_type": "display_data"
},
{
"data": {
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"text/plain": [
"<Figure size 555x330 with 1 Axes>"
]
},
"metadata": {
"needs_background": "light"
},
"output_type": "display_data"
},
{
"data": {
"image/png": "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
"text/plain": [
"<Figure size 555x330 with 1 Axes>"
]
},
"metadata": {
"needs_background": "light"
},
"output_type": "display_data"
},
{
"data": {
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"text/plain": [
"<Figure size 555x330 with 1 Axes>"
]
},
"metadata": {
"needs_background": "light"
},
"output_type": "display_data"
},
{
"data": {
"image/png": "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
"text/plain": [
"<Figure size 555x330 with 1 Axes>"
]
},
"metadata": {
"needs_background": "light"
},
"output_type": "display_data"
},
{
"data": {
"image/png": "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
"text/plain": [
"<Figure size 555x330 with 1 Axes>"
]
},
"metadata": {
"needs_background": "light"
},
"output_type": "display_data"
}
],
"source": [
"xlabel = {\n",
" 'theta_energy': 'Theta coherence energy',\n",
" 'theta_peak': 'Theta peak coherence',\n",
" 'theta_freq': '(Hz)',\n",
" 'theta_half_width': '(Hz)',\n",
" 'theta_vec_len': 'a.u.',\n",
" 'theta_ang': 'rad'\n",
"}\n",
"for cell_type in ['gridcell', 'ns_inhibited', 'ns_not_inhibited']:\n",
" for key in xlabel:\n",
" fig = plt.figure(figsize=(3.7,2.2))\n",
" plt.suptitle(key + ' ' + cell_type)\n",
" legend_lines = []\n",
" for color, label in zip(colors, labels):\n",
" legend_lines.append(matplotlib.lines.Line2D([0], [0], color=color, label=label))\n",
" sns.kdeplot(data=results[cell_type][key].loc[:,labels], cumulative=True, legend=False, palette=colors, common_norm=False)\n",
" plt.xlabel(xlabel[key])\n",
" plt.legend(\n",
" handles=legend_lines,\n",
" bbox_to_anchor=(1.04,1), borderaxespad=0, frameon=False)\n",
" plt.tight_layout()\n",
" plt.grid(False)\n",
" despine()\n",
" figname = f'spike-lfp-coherence-histogram-{key}-{cell_type}'.replace(' ', '-')\n",
" fig.savefig(\n",
" output_path / 'figures' / f'{figname}.png', \n",
" bbox_inches='tight', transparent=True)\n",
" fig.savefig(\n",
" output_path / 'figures' / f'{figname}.svg', \n",
" bbox_inches='tight', transparent=True)"
]
},
{
"cell_type": "code",
"execution_count": null,
"metadata": {},
"outputs": [
{
"data": {
"image/png": "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
"text/plain": [
"<Figure size 495x330 with 1 Axes>"
]
},
"metadata": {
"needs_background": "light"
},
"output_type": "display_data"
},
{
"data": {
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"text/plain": [
"<Figure size 495x330 with 1 Axes>"
]
},
"metadata": {
"needs_background": "light"
},
"output_type": "display_data"
},
{
"data": {
"image/png": "iVBORw0KGgoAAAANSUhEUgAAAc8AAAFGCAYAAAAMxxQ7AAAABHNCSVQICAgIfAhkiAAAAAlwSFlzAAAXEQAAFxEByibzPwAAADh0RVh0U29mdHdhcmUAbWF0cGxvdGxpYiB2ZXJzaW9uMy4xLjIsIGh0dHA6Ly9tYXRwbG90bGliLm9yZy8li6FKAAAgAElEQVR4nOzdd3xb5fX48Y8s7zixnU0SsuFA2GWGGUZZARICtJS9CvTHbguFtt8CLYVS2kILlFA2lE0ZgaTsFAg7bEI4IUACCZC9vG3p/v54rmTFyLLlSL6yfd6vV17SnTpWbB099z7PeUKe52GMMcaY9ssLOgBjjDGmq7HkaYwxxqTJkqcxxhiTJkuexhhjTJoseRpjjDFpsuRpjDHGpMmSpzHGGJMmS57GGGNMmix5GmOMMWmy5GmMMcakyZKnMcYYkyZLnsYYY0yaLHkaY4wxabLkaYwxxqQpP+gATOcQka1V9cMk6+8ETvQXN1LV7zo1MGM6QEQWACMAVdXNOnD8BGCmv3iyqt6Zqdg2VGs/m4iMBL70F29W1TM7PTgTZ8mzmxORcuD3wFnY/7cxxmSEfZh2f38DTgk6CGOM6U4seXZ/4VQbVfUk4KROicSYDFHVkUHHYHo26zBkjDHGpMmSpzHGGJMmu2zbRYiIAP8P2BcYhfvisxx4B3gUuE9VmxL2vwy4tMU5PP/pS6o6wV93J630tk3o9fdXVf2liEwEzga2B8qAr4D/AH9W1TX+MdsCvwD2Bgb4Mb4I/EFV523wG9FCi16T44E5wMXAkcBwoA54D7gN9x55SU6TiTgW0EnvlYiMAn4KTABGA31xP+cy4A3gTlV9rsUxWwKzgSKgHthWVT9Ncu59gOeBEDAP+IGqVqf5XgwAfg4c5sfXAHwC3AncAlwEXAWgqqEWx8b+fy4ApgM3ALsDjcB84GJVfb49vW1FZA/gXNz/wRDgO+DJ2Gu382fZBzgV2AH3+9QIKPAEcH3s/7KVY3cBTgf28l+/EVgAPAv8Q1W/am8cJvdYy7MLEJFjgA9xHwRbAKVAMTAMmATcBbwtIoOyGMNU4CngQNwHfQkgwK+BV0Skl4icBrwFHAcMBQpxHxrHAbNFZJtsxecb6L/+r4FNce9RBS45/Rt4VESKsxxDVt8rEbkEl9QuwX1ZGAQUAL1xieoY4FkR+Wficar6MfB//mIRcIuItExcFbjfpRDug/6YDiTO7Wn+AjMO93/QB9gFmAq8APRqx6k2Bl4F9sf9vpcDP8Al0LZiyBORG4CXcV+iRuF+5hG4LzQfAzu1cY7eIvKIH+8xNP8+9cYl0j8AnyT7fxKRfP/9fx04Gff/Ejt2K9wXpnkicnpbP4vJXZY8c5yIjAVux324fgn8DPdNfDzug/Z1f9dtgcQPzKnAdrhv2jHb+f9OSzOME4EzcN+4fwrsBhyP+xYN7gPhEeBmYAkuyY8HDgae8ffpDfw9zddN183AZriW5rG4D+yTgLn+9sm45JBNWXuvRORk4ErcFaNFwK9wyWU88GPcF4Sov/vPROSAFqf4KzDLf7470HKc4D9xX8gAfquq77TvR47HNxJ3FWCAH8dtwAHArriW6BJca/midpzufKA/8GdgD+Ao4EpVXdCOY/+MG5oF7n0/E/ceHQI8BFSSovXpf6mYBhzhr/oQ9zczHjgUuM9fPwSYLiKVLU5xK+7vFNz7fSLud3EC7gvUd7hkfrOInIjpkuyybe47FveHFgH2VtWFCdveEJGHgP/hPqAOF5H+qrrcv/z6nYisjO2squ93MIb+uA+QPVR1rb/uNRF5D/ctHlwrawGws6oujR0oIs/gLiXuCOwpIhWqurqDcbRlMDADOFxVG/x1b/otiOdxH2A/EpGpqjqztZNsoKy8V/4H+u/9XVcDe6pqbMA8/nEPicibwPX+uqNoTsioatT/sP4Adyn5TyIyTVUXi8jRwE/8XWcCf+nAz34tLvEDHKuqDyRse11E7se1Bjdpx7nycMnyNwnrHmnrIBHZHDjPX/wY9z6tSthluv8e/TXFaU7FJTqAx4Afq2pjwvanRGQecBnuqsHZuJYoIjKZ5tsgV6nqr1uc+yURuRX3NzsOuFFEnlLVFW39bCa3WMsz9w32H6uAb1pu9P+oLwX+gbtPlK3/098mJIPYa8+huVUHcHliMvD3idLc+g0BY7IUH8Aq4PiExBmLoRo4geZWWbYrs2TjvRoBrATWAHe0SJyJ/p3wfGjLjar6BfBLf7EPcJ2IDAZu9NetBE7wY2k3ERmOa9kD3N8iccZe+zvSG3N8Uzox+E6luVFwZovEGYvjb7gk3prY5dS1uOpDjUn2+SMQ+//bP2H9hf7jHOA3JKGqy3D9F8Bdwk73SpDJAZY8c1+sU0c58LD/zXo9qvq8qp6nqn9v+YGcIVGaO+W0tDjh+Qut7JMYU1lGIkruAVVdmWyDqn5G8yXLA0UkW1ddsvJeqeoCVd1GVStoTn7JrAFq/edFyXZQ1ZuBp/3FI/3nff3ln6rqohTnb82hCc/vaG0nVZ2F6zzUlsUdjONg/3Ghqr6aYr/bk630v0js4C9Oa61DkN85b09gsKru4R9bibu0C/BCG53TZgHr/Of7ptjP5Ci7bJv77sZ9mx2K6xw0SUS+AJ7DXYp8PouXQWOWq2pVK9vqE55/2459Qq3skwmpPiwB3sV94PXB3a/KRm/HrL9XsVahiPTBdUYZA2yOu5+9O66DEqT+cnwq7rJmJRDr9HKbqj6a4phUtk14PruNfd/EXbJM5et0AxCRPFzHHnCXplN5q5X1m9D8vr+b6gSqqi1WbZtw7Lkicm4bMcSMbud+JodY8sxxqrpKRPbDfZvfxV89Gtcp5QwgIiIv4b5JZ2soxrq2d4l/Gw/S9y5rt7As4flgspM8s/pe+Vcefg4cRJLLskC7/v9V9RsR+S3Nl2sbaV9HntbEenpHkl0qbaE9V0fWtr3L9/SjuaJWW/cQl7SyPrHHerr3IfunuX9Myw5Hpguw5NkF+OPxxovIzrgegAfjhqyA+7DYx/93sogcqqq1yc/UYUEnxfZqK87EUoUNre6V3Rg6zO9t+y/W/7tdibuX+jGuRfcc7lJ/yuEgfivtJwmrCnDJ8+IOhlfoP+aJSKiNL3HtSfAd+RKYeExbVziS3ceEDftMTDz2Cty43vaIbMBrmoBY8uxCVPVN3AfkRf69mX1w3e8n4y7V7Yu7H/aHwIIMVt82tg9IeN7aZdOcJCJb0Zw41+F6ej7acuiGnxRLWh6fxC9xl3jB3SctBy70e9++1oEQl/uPIVwLcHmKfTvaQmvLClxSLGD9/+tkWvtdSbxn3i/N1088tnYDerebLsCSZ44TkdgA+0a/xyYQ77l4H3CfiGyHu8+Uh0umPTV5bour/NKaHf3Hb2nfpcNccgbNf69nq+rdrew3jDY6AvrVhmLDXj4GjsZVqioC7hKRbVS1Js343scNqwJXzODZFPtun+a520VVPRH5BHcPd/s2WsDbtrI+sTNTyqIeInI17krQF8CPaB6KBM23WFo7thBX6GIR8Imqvp5qf5N7rLdtDvP/wFbgBv232m1fVd+juSXVsoJOWkMOurifiEjSWWREZByws7/4eLbK9GXR2ITnqYoXHJfw/HtfjkWkANcJrQj3u3Gq/6Us9oVrLHBNB+J7KuH5sa3t5Legt+vA+dsrdql0MDAxxX4nJFvp9/CNdQQ6TESSXv72x90ehuustZmqrlbVxbghKuB6dI9K8frH4a4e3IorpmG6GEueOcwfrxj7Br+7iByRbD8R2YvmziNvt9hcn7BfNoeJ5ALBjb9bf6XrlXo3zWXnbujkuDIh8TLoQcl2EJGDgd8lrEo2VOV3NCevv6tqrNfpn3HFHcBVJ9ovneD8+/Kx4S/Hi8hhSeIrx9W3zabbae5sdKM//rRlHMcAU1KcI1ZkotI/R7LPyQtx1azAJcCYWPGFAuABv+Rhy9ffFPd+g7tPe33LfUzus8u2ARKRaQCq+r0PmgSX475B5+P+GO/GFcxejLsnsxfNA65r+H6rIfHe3pX+8RG/tdod/Up
"text/plain": [
"<Figure size 495x330 with 1 Axes>"
]
},
"metadata": {
"needs_background": "light"
},
"output_type": "display_data"
},
{
"data": {
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"text/plain": [
"<Figure size 495x330 with 1 Axes>"
]
},
"metadata": {
"needs_background": "light"
},
"output_type": "display_data"
},
{
"data": {
"image/png": "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
"text/plain": [
"<Figure size 495x330 with 1 Axes>"
]
},
"metadata": {
"needs_background": "light"
},
"output_type": "display_data"
},
{
"data": {
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"text/plain": [
"<Figure size 495x330 with 1 Axes>"
]
},
"metadata": {
"needs_background": "light"
},
"output_type": "display_data"
},
{
"data": {
"image/png": "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
"text/plain": [
"<Figure size 495x330 with 1 Axes>"
]
},
"metadata": {
"needs_background": "light"
},
"output_type": "display_data"
},
{
"data": {
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"text/plain": [
"<Figure size 495x330 with 1 Axes>"
]
},
"metadata": {
"needs_background": "light"
},
"output_type": "display_data"
},
{
"data": {
"image/png": "iVBORw0KGgoAAAANSUhEUgAAAc8AAAFGCAYAAAAMxxQ7AAAABHNCSVQICAgIfAhkiAAAAAlwSFlzAAAXEQAAFxEByibzPwAAADh0RVh0U29mdHdhcmUAbWF0cGxvdGxpYiB2ZXJzaW9uMy4xLjIsIGh0dHA6Ly9tYXRwbG90bGliLm9yZy8li6FKAAAgAElEQVR4nOzdd5hcVfnA8e9sb0k2BZKQQvoLgUBCCR1CR2oIIEozIAoqIPijiKCAoqiIYEEBAekiCAISBIFA6KGHEMIbAgRIQkndXmfm98e5U3YzO7uzO3dmd/b9PM8+c/s9O3t33rnnnvOeQDgcxhhjjDFdl5ftAhhjjDF9jQVPY4wxJkUWPI0xxpgUWfA0xhhjUmTB0xhjjEmRBU9jjDEmRRY8jTHGmBRZ8DTGGGNSZMHTGGOMSZEFT2OMMSZFFjyNMcaYFFnwNMYYY1JkwdMYY4xJkQVPY4wxJkUF2S5AfyAi26nqOwmW3wZ8y5sdqapfZLRgxvQSIjIX+Ls3+01VvTfNx18BbAmoqm7Vjf3HAR97szeq6plx6+bSw7J35bPAK8M6Va1J9fjpEvc+LlDVWdkqR29gwdNHIjII+DnwA+y9NsZ0g4gUAxcBPwamAlkLnibGPtD99XvgtGwXwhjTp10IXJHtQpi2LHj6Kz/ZSlWdC8zNSEmM6cVU9TbgtiwXo0OqugII+Hj8uXT8WZD0c8RkhzUYMsYYY1JkwdMYY4xJkVXbdoGICPB9YH9gPO5Lx1rgDeBB4B5VbY3b/nLgsnbHCHuT0VZqyVrYxbVqu0ZVzxeRw4CzgB2BCuBT4AHgt6pa5e0zHfg/YF9gM6+M84FfqOqyHr8R7YjILOAZb3Y3YAmuUcOxwFigEXgLuAX3HoUTHCYd5VhBht4rERkPfAeYBUwAhuB+zzXAK8Btqvpku322BV4HioEmYLqqvp/g2PsBT+GqB5cBO6hqXRffg2eBfYCHVXW2iOwInOOVczhQDbwG3Kyq/05ynJSu9XRJ1mI17v9kkapOF5HJwLnAwcAooB54B7gDuF1VQ104317A2cBeuL/hV8BC4M+q+myC7cfRQWvbBNsOAy4BjvLKtx54GffeP9bBPpHfEbzPgnbvScTH7k/EJ6o6LsFxdgW+i7sWtgBagBXA/4A/quqnHZXb238E7ro5DHd9N+Gum2tV9X/J9u1v7M6zEyJyAu4f8xxgG6AMKAFG4/45bgdeE5HhPpbhBuBR4BDcB30pIMBPgOdFpFxETgdeBU7C/cMW4f55TgJeF5Ht/SqfZ3Pv/D8BpuDeo0pccLoLeFBESnwug6/vlYhcjAtqF+O+LAwHCoEBuA+aE4D/ichf4vdT1XeBn3qzxcDfRKTN8zMRqcRdSwHcB94JXQ2cCcp5Ni6Qn4L7ElPsvReH4v4Od7Q/v7df1q/1zojIMcDbuAA/0SvfENyXhFuBJ7zWqcmO8VvgOeA4YATu7z8aOAaYLyKX9KCIWwGLccF9vHfsEcDRwDwRuUdE0n7TIiIF3nX3MnAq7noswV2b03BfFJeJyHeTHONAYtf3drgvnkNx/0tPiMgv013uvsyCZxIiMgn3D1mE+9b5PWBP3AfnSbgLFWA6EP+BeQMwA/hP3LIZ3s/pKRbjW8AZgOLuePYATsZ9mwT3j/Ev4EbgS9wH3264D8onvG0GAH9I8bypuhH3wfEWcCKwK64BxFJv/Wzch6+ffHuvRORU4Fe42pqVuK4DB3n7H4/7ghC54/meiBzc7hDXAC9403sC7e9c/oL7AAe4VFXf6NqvvIldvfJX4wL23ri7kF8Bzd42JwNfj9+pB9d6Jo0F7vamf4u7O94TV9tR7S0/ABe4OiLABbi//8W49+Yw4CYgjPvy8gvvDq47foYLlv/FXfO74d7Lz7z13wSu7eKxHsF9ZtwYt+wwb9mh7ba92TsPuOvsW7hrYRbui+MXuC9RN4rIt9rti4jMAObhrv8W4DpgP9z7eylQ5R1nTBfLnvOs2ja5E3EXXBDYV1U/iVv3iojcBzwL7A4cLSLDVHWtV/36hYisj2ysqm93swzDcHcDe6lq5APiJRF5C3jXmz8EFyB2UdWvIjuKyBO4O5Cdgb1FpFJVN3azHJ0ZATwGHK2qkQ/phSLyL1xV5K7A10XkBlV9pqOD9JAv75V3l/Zzb9ONwN6qGqnCw9vvPhFZCPzJW3YcsYCMqoa8D61FuG/0vxaRR1R1lYh8A/ehCq4a/Hc9eA+GA58Du7arontORBYB//Tm58ZNQzev9R6UszsGA3XAnu3+n14UkQXAS7jgNxf4TZLjLANmqernccseE5GPgau8Y5yM+7umKoB7PHBR3LJXvP+D53FfMH8gIjep6uJkB1LV9cB6EYlPmPCe1/I3SkRmE6vyvUpVf9LuUAtE5Gbc328qcL2IPKqq6+K2+TOuFiUEHKGqT8Ste9Er/wu4/zGD3Xl2ZoT3Wgusbr9SVVtwzzb/CJyHf+/npXHBIHLuJcTu6gCuiA8G3jYhYne/AVw1l182ACfHBc5IGepw1YeRu7IOnxWliR/v1Za451ZVwN/bBc54d8VNj2q/UlU/As73ZgcC13nPmK73lq0HTunKM7tOXNnBs637cX8ngPZV073lWu/MXxJ9EVXVV3BfnAC26qTq9v/aBc6Iv+LuPgG27Wb53sHdobUv31pi134AV0OSLhd4r0twz1o3oaprcFXdAOXE1YB5z+R392ZvbRc4I/srrr+p8VjwTC7SqGMQcL+IbN1+A1V9SlV/qKp/aP+BnCYhYo1y2lsVN/10B9vEl6kiLSVK7F7vm/ImVPUDYlWWh/jxzMfjy3ulqitUdXtVrSQW/BKpAhq86YQf3qp6I/C4N3usNz3Em/+Oqq5McvyuStiww2uwFQn8A9qt7g3Xelcka7TyYdx0R9d6C64mZBNeY7LI7zUk0TZdcIuqBjs4/gIgckd/UDeP34aIDMZVDQM83UmjvBeIZSfaP255fBXwPUn2v5fY9d3vWbVtcnfgvtWNwjWYOEpEPgKexP0DPuVjNWjEWlWt7WBdU9x0om/S7bfxrZM38GIn69/EPX8biGuck7TVXzf5/l5F7gpFZCCuUcZEYGvcc6g9cQ2UIPkX02/jqpEHE7sDvEVVH0yyTypWJFkXeX/a/+/3hmu9K1YkWRf/t+/os22tqjYmOUZkXXc/Gxd2sv4tXE3GZBEp6aQsXTGd2LV6joic08X9JsRNx+f67fDxkqo2iMhiYGZqRcxNdueZhKpuwDVAiH/2MQFX5XI/sFZEnhaRExO1XkyTLuWx9KP7QIo2qeprZ03c9IgOt+oZX98rEdlaRP4mIitxd5lv4Rog/QKYg2vR2pXzr8Y1wohoIX1VYk2d/H6RO5M212svuda7oqMvRxD73aDjL4pdzQvb3d+xszvy+OfEg7t5jnjdfQYZf+5I6+mQdx0k82U3z5dzLHh2QlXfV9XdcA1ersY9V4jIx7VIuwt4UkRKExyip7IdFLuqs3LGpxhr7nArf8vQbV5r23dwz4oizzPX4+64b8TlMB6La9DS2bHyiDUQAtdQI+vPk3rBtZ4JvvQ1TkF8UG7qcKuui79DvpJYq/7OfmbF7Rd9T7rwxailxyXOEVZt20WquhBXJXOh18hjP+BwXHP0UtwzhPNxdyH9UWfPiOLvyjqqNu2VRGQaritDAe7O5XLgwQStHvOIVdsmcz6uihfcHewg4AKv9e1LaSp2t9m13iNDiD1XTmRz77UV97fvqfh2Bg3dbNUf+X/Mw/XrTNaKurvPgnOOBc8kvG/XArR4LTYB8Lqi3APc4/WPeh134R1O//1AmQ48nGT9zt7r53RetdXbnEHsf+UsVb2jg+1G00ltjteyMdLt5V3gG7jsPcXA7SKyvarW97zIqbFrPW22wf09N+Hd1e3kzb7TUcOiFL0bN520b6qIFOH6tq7EdXmJ9N2Nr2HYGddHNdH+ebi+0gartu2Qd6Gtwz3X+mtH26nqW8S+ubXPoNPTLgd9yTdFJOHoDyIyFdjFm32okxaBvdGkuOlkyQtOipve5IupiBTiGuYU466Nb3uBKhK
"text/plain": [
"<Figure size 495x330 with 1 Axes>"
]
},
"metadata": {
"needs_background": "light"
},
"output_type": "display_data"
},
{
"data": {
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"text/plain": [
"<Figure size 495x330 with 1 Axes>"
]
},
"metadata": {
"needs_background": "light"
},
"output_type": "display_data"
},
{
"data": {
"image/png": "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
"text/plain": [
"<Figure size 495x330 with 1 Axes>"
]
},
"metadata": {
"needs_background": "light"
},
"output_type": "display_data"
},
{
"data": {
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"text/plain": [
"<Figure size 495x330 with 1 Axes>"
]
},
"metadata": {
"needs_background": "light"
},
"output_type": "display_data"
},
{
"data": {
"image/png": "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
"text/plain": [
"<Figure size 495x330 with 1 Axes>"
]
},
"metadata": {
"needs_background": "light"
},
"output_type": "display_data"
},
{
"data": {
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"text/plain": [
"<Figure size 495x330 with 1 Axes>"
]
},
"metadata": {
"needs_background": "light"
},
"output_type": "display_data"
},
{
"data": {
"image/png": "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
"text/plain": [
"<Figure size 495x330 with 1 Axes>"
]
},
"metadata": {
"needs_background": "light"
},
"output_type": "display_data"
},
{
"data": {
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"text/plain": [
"<Figure size 495x330 with 1 Axes>"
]
},
"metadata": {
"needs_background": "light"
},
"output_type": "display_data"
},
{
"data": {
"image/png": "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
"text/plain": [
"<Figure size 495x330 with 1 Axes>"
]
},
"metadata": {
"needs_background": "light"
},
"output_type": "display_data"
},
{
"data": {
"image/png": "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
"text/plain": [
"<Figure size 495x330 with 1 Axes>"
]
},
"metadata": {
"needs_background": "light"
},
"output_type": "display_data"
}
],
"source": [
"xlabel = {\n",
" 'stim_energy': 'Coherence energy',\n",
" 'stim_half_width': '(Hz)',\n",
" 'stim_p_max': 'Peak coherence',\n",
" 'stim_strength': 'Ratio',\n",
" 'stim_vec_len': 'a.u.',\n",
" 'stim_ang': 'rad'\n",
"}\n",
"# key = 'theta_energy'\n",
"# key = 'theta_peak'\n",
"for cell_type in ['gridcell', 'ns_inhibited', 'ns_not_inhibited']:\n",
" for key in xlabel:\n",
" fig = plt.figure(figsize=(3.3,2.2))\n",
" plt.suptitle(key + ' ' + cell_type)\n",
" legend_lines = []\n",
" for color, label in zip(colors[1::2], labels[1::2]):\n",
" legend_lines.append(matplotlib.lines.Line2D([0], [0], color=color, label=label))\n",
" sns.kdeplot(data=results[cell_type][key].loc[:,labels[1::2]], cumulative=True, legend=False, palette=colors[1::2], common_norm=False)\n",
" plt.xlabel(xlabel[key])\n",
" plt.legend(\n",
" handles=legend_lines,\n",
" bbox_to_anchor=(1.04,1), borderaxespad=0, frameon=False)\n",
" plt.tight_layout()\n",
" plt.grid(False)\n",
" despine()\n",
" figname = f'spike-lfp-coherence-histogram-{key}-{cell_type}'.replace(' ', '-')\n",
" fig.savefig(\n",
" output_path / 'figures' / f'{figname}.png', \n",
" bbox_inches='tight', transparent=True)\n",
" fig.savefig(\n",
" output_path / 'figures' / f'{figname}.svg', \n",
" bbox_inches='tight', transparent=True)"
]
},
{
"cell_type": "markdown",
"metadata": {},
"source": [
"## polar plot"
]
},
{
"cell_type": "code",
"execution_count": null,
"metadata": {},
"outputs": [],
"source": [
"from septum_mec.analysis.statistics import VonMisesKDE"
]
},
{
"cell_type": "code",
"execution_count": null,
"metadata": {},
"outputs": [
{
"data": {
"image/png": "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
"text/plain": [
"<Figure size 480x330 with 1 Axes>"
]
},
"metadata": {
"needs_background": "light"
},
"output_type": "display_data"
},
{
"data": {
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"text/plain": [
"<Figure size 480x330 with 1 Axes>"
]
},
"metadata": {
"needs_background": "light"
},
"output_type": "display_data"
},
{
"data": {
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"text/plain": [
"<Figure size 480x330 with 1 Axes>"
]
},
"metadata": {
"needs_background": "light"
},
"output_type": "display_data"
},
{
"data": {
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"text/plain": [
"<Figure size 480x330 with 1 Axes>"
]
},
"metadata": {
"needs_background": "light"
},
"output_type": "display_data"
},
{
"data": {
"image/png": "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
"text/plain": [
"<Figure size 480x330 with 1 Axes>"
]
},
"metadata": {
"needs_background": "light"
},
"output_type": "display_data"
},
{
"data": {
"image/png": "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
"text/plain": [
"<Figure size 480x330 with 1 Axes>"
]
},
"metadata": {
"needs_background": "light"
},
"output_type": "display_data"
}
],
"source": [
"for paradigm in ['stim', 'theta']:\n",
" key = paradigm + '_vec_len'\n",
" for cell_type in ['gridcell', 'ns_inhibited', 'ns_not_inhibited']:\n",
" fig = plt.figure(figsize=(3.2,2.2))\n",
" plt.suptitle(key + ' ' + cell_type)\n",
" legend_lines = []\n",
" for color, query, label in zip(colors, queries, labels):\n",
" data_query = data.query(query + ' and ' + cell_type)\n",
" values = data_query[key].values\n",
" angles = data_query[paradigm + '_ang'].values\n",
" kde = VonMisesKDE(angles, weights=values, kappa=5)\n",
" bins = np.linspace(-np.pi, np.pi, 100)\n",
" plt.polar(bins, kde.evaluate(bins), color=color, lw=2)\n",
" plt.polar(angles, values, color=color, lw=1, ls='none', marker='.', markersize=2)\n",
"# values.hist(\n",
"# bins=bins[key], density=density, cumulative=cumulative, lw=lw, \n",
"# histtype=histtype, color=color)\n",
" legend_lines.append(matplotlib.lines.Line2D([0], [0], color=color, lw=2, label=label))\n",
" plt.legend(\n",
" handles=legend_lines,\n",
" bbox_to_anchor=(1.04,1), borderaxespad=0, frameon=False)\n",
" plt.tight_layout()\n",
"# plt.grid(False)\n",
" figname = f'spike-lfp-polar-plot-{paradigm}-{cell_type}'.replace(' ', '-')\n",
" fig.savefig(\n",
" output_path / 'figures' / f'{figname}.png', \n",
" bbox_inches='tight', transparent=True)\n",
" fig.savefig(\n",
" output_path / 'figures' / f'{figname}.svg', \n",
" bbox_inches='tight', transparent=True)"
]
},
{
"cell_type": "code",
"execution_count": null,
"metadata": {},
"outputs": [],
"source": [
"stats = {}\n",
"for cell_type, result in results.items():\n",
" stats[cell_type], _ = make_statistics_table(result, labels)"
]
},
{
"cell_type": "code",
"execution_count": null,
"metadata": {},
"outputs": [
{
"data": {
"text/html": [
"<div>\n",
"<style scoped>\n",
" .dataframe tbody tr th:only-of-type {\n",
" vertical-align: middle;\n",
" }\n",
"\n",
" .dataframe tbody tr th {\n",
" vertical-align: top;\n",
" }\n",
"\n",
" .dataframe thead th {\n",
" text-align: right;\n",
" }\n",
"</style>\n",
"<table border=\"1\" class=\"dataframe\">\n",
" <thead>\n",
" <tr style=\"text-align: right;\">\n",
" <th></th>\n",
" <th>Theta energy</th>\n",
" <th>Theta peak</th>\n",
" <th>Theta freq</th>\n",
" <th>Theta half width</th>\n",
" <th>Theta vec len</th>\n",
" <th>Theta ang</th>\n",
" <th>Stim energy</th>\n",
" <th>Stim half width</th>\n",
" <th>Stim p max</th>\n",
" <th>Stim strength</th>\n",
" <th>Stim vec len</th>\n",
" <th>Stim ang</th>\n",
" </tr>\n",
" </thead>\n",
" <tbody>\n",
" <tr>\n",
" <th>Baseline I</th>\n",
" <td>2.0e-01 ± 2.6e-02 (63)</td>\n",
" <td>1.7e-01 ± 1.9e-02 (63)</td>\n",
" <td>7.7e+00 ± 7.5e-02 (63)</td>\n",
" <td>6.4e-01 ± 3.8e-02 (63)</td>\n",
" <td>2.0e-01 ± 1.5e-02 (63)</td>\n",
" <td>3.7e+00 ± 1.0e-01 (63)</td>\n",
" <td>NaN</td>\n",
" <td>NaN</td>\n",
" <td>NaN</td>\n",
" <td>NaN</td>\n",
" <td>NaN</td>\n",
" <td>NaN</td>\n",
" </tr>\n",
" <tr>\n",
" <th>11 Hz</th>\n",
" <td>9.7e-02 ± 1.6e-02 (56)</td>\n",
" <td>6.9e-02 ± 7.0e-03 (56)</td>\n",
" <td>7.8e+00 ± 1.3e-01 (56)</td>\n",
" <td>4.3e-01 ± 7.6e-02 (56)</td>\n",
" <td>4.0e-02 ± 4.6e-03 (56)</td>\n",
" <td>3.3e+00 ± 2.7e-01 (56)</td>\n",
" <td>8.8e-02 ± 9.1e-03 (58)</td>\n",
" <td>2.2e-01 ± 6.8e-03 (58)</td>\n",
" <td>4.5e-01 ± 3.1e-02 (58)</td>\n",
" <td>9.0e+00 ± 8.9e-01 (58)</td>\n",
" <td>2.2e-01 ± 1.6e-02 (58)</td>\n",
" <td>2.9e+00 ± 2.6e-01 (58)</td>\n",
" </tr>\n",
" <tr>\n",
" <th>Baseline II</th>\n",
" <td>3.3e-01 ± 4.2e-02 (46)</td>\n",
" <td>2.5e-01 ± 2.5e-02 (46)</td>\n",
" <td>8.1e+00 ± 4.4e-02 (46)</td>\n",
" <td>8.2e-01 ± 6.4e-02 (46)</td>\n",
" <td>2.3e-01 ± 1.9e-02 (46)</td>\n",
" <td>4.0e+00 ± 1.1e-01 (46)</td>\n",
" <td>NaN</td>\n",
" <td>NaN</td>\n",
" <td>NaN</td>\n",
" <td>NaN</td>\n",
" <td>NaN</td>\n",
" <td>NaN</td>\n",
" </tr>\n",
" <tr>\n",
" <th>30 Hz</th>\n",
" <td>4.3e-02 ± 4.8e-03 (35)</td>\n",
" <td>4.2e-02 ± 4.7e-03 (35)</td>\n",
" <td>7.9e+00 ± 2.0e-01 (35)</td>\n",
" <td>3.0e-01 ± 2.7e-02 (35)</td>\n",
" <td>1.8e-02 ± 2.6e-03 (35)</td>\n",
" <td>3.8e+00 ± 3.1e-01 (35)</td>\n",
" <td>9.1e-02 ± 8.8e-03 (33)</td>\n",
" <td>2.5e-01 ± 4.0e-03 (33)</td>\n",
" <td>3.9e-01 ± 3.3e-02 (33)</td>\n",
" <td>1.3e+01 ± 1.5e+00 (33)</td>\n",
" <td>2.5e-01 ± 1.5e-02 (33)</td>\n",
" <td>2.6e+00 ± 2.4e-01 (33)</td>\n",
" </tr>\n",
" <tr>\n",
" <th>LMM Baseline I - 11 Hz</th>\n",
" <td>1.1e-01, 1.3e-01</td>\n",
" <td>5.3e-03, 1.2e-01</td>\n",
" <td>9.8e-01, -7.5e-03</td>\n",
" <td>7.8e-02, 2.7e-01</td>\n",
" <td>1.6e-03, 1.5e-01</td>\n",
" <td>2.0e-02, 4.3e-01</td>\n",
" <td>NaN</td>\n",
" <td>NaN</td>\n",
" <td>NaN</td>\n",
" <td>NaN</td>\n",
" <td>NaN</td>\n",
" <td>NaN</td>\n",
" </tr>\n",
" <tr>\n",
" <th>LMM Baseline I - Baseline II</th>\n",
" <td>1.9e-01, -5.3e-02</td>\n",
" <td>1.2e-01, -4.2e-02</td>\n",
" <td>7.6e-02, 2.2e-01</td>\n",
" <td>6.6e-01, -3.6e-02</td>\n",
" <td>2.6e-01, -3.2e-02</td>\n",
" <td>6.9e-01, 1.4e-01</td>\n",
" <td>NaN</td>\n",
" <td>NaN</td>\n",
" <td>NaN</td>\n",
" <td>NaN</td>\n",
" <td>NaN</td>\n",
" <td>NaN</td>\n",
" </tr>\n",
" <tr>\n",
" <th>LMM Baseline I - 30 Hz</th>\n",
" <td>5.5e-02, 1.6e-01</td>\n",
" <td>1.8e-02, 1.4e-01</td>\n",
" <td>3.7e-01, -2.3e-01</td>\n",
" <td>1.1e-11, 3.8e-01</td>\n",
" <td>9.7e-04, 1.8e-01</td>\n",
" <td>4.7e-01, 3.5e-01</td>\n",
" <td>NaN</td>\n",
" <td>NaN</td>\n",
" <td>NaN</td>\n",
" <td>NaN</td>\n",
" <td>NaN</td>\n",
" <td>NaN</td>\n",
" </tr>\n",
" <tr>\n",
" <th>LMM 11 Hz - Baseline II</th>\n",
" <td>1.2e-02, 2.3e-01</td>\n",
" <td>1.1e-02, 1.7e-01</td>\n",
" <td>7.1e-01, 1.4e-01</td>\n",
" <td>1.4e-12, 4.2e-01</td>\n",
" <td>6.3e-04, 1.6e-01</td>\n",
" <td>NaN</td>\n",
" <td>NaN</td>\n",
" <td>NaN</td>\n",
" <td>NaN</td>\n",
" <td>NaN</td>\n",
" <td>NaN</td>\n",
" <td>NaN</td>\n",
" </tr>\n",
" <tr>\n",
" <th>LMM 11 Hz - 30 Hz</th>\n",
" <td>5.2e-02, -6.2e-02</td>\n",
" <td>4.5e-02, -3.2e-02</td>\n",
" <td>5.5e-01, 2.8e-01</td>\n",
" <td>3.3e-01, -1.3e-01</td>\n",
" <td>1.6e-02, -2.7e-02</td>\n",
" <td>4.0e-01, 2.8e-01</td>\n",
" <td>8.7e-01, 6.2e-03</td>\n",
" <td>2.7e-01, 2.8e-02</td>\n",
" <td>7.5e-01, -3.0e-02</td>\n",
" <td>1.1e-01, 4.5e+00</td>\n",
" <td>6.8e-01, 3.0e-02</td>\n",
" <td>4.9e-01, -4.2e-01</td>\n",
" </tr>\n",
" <tr>\n",
" <th>LMM Baseline II - 30 Hz</th>\n",
" <td>1.9e-02, 2.7e-01</td>\n",
" <td>2.5e-02, 1.9e-01</td>\n",
" <td>8.3e-01, 7.0e-02</td>\n",
" <td>6.4e-04, 4.8e-01</td>\n",
" <td>4.9e-04, 2.0e-01</td>\n",
" <td>6.1e-01, 3.0e-01</td>\n",
" <td>NaN</td>\n",
" <td>NaN</td>\n",
" <td>NaN</td>\n",
" <td>NaN</td>\n",
" <td>NaN</td>\n",
" <td>NaN</td>\n",
" </tr>\n",
" </tbody>\n",
"</table>\n",
"</div>"
],
"text/plain": [
" Theta energy Theta peak \\\n",
"Baseline I 2.0e-01 ± 2.6e-02 (63) 1.7e-01 ± 1.9e-02 (63) \n",
"11 Hz 9.7e-02 ± 1.6e-02 (56) 6.9e-02 ± 7.0e-03 (56) \n",
"Baseline II 3.3e-01 ± 4.2e-02 (46) 2.5e-01 ± 2.5e-02 (46) \n",
"30 Hz 4.3e-02 ± 4.8e-03 (35) 4.2e-02 ± 4.7e-03 (35) \n",
"LMM Baseline I - 11 Hz 1.1e-01, 1.3e-01 5.3e-03, 1.2e-01 \n",
"LMM Baseline I - Baseline II 1.9e-01, -5.3e-02 1.2e-01, -4.2e-02 \n",
"LMM Baseline I - 30 Hz 5.5e-02, 1.6e-01 1.8e-02, 1.4e-01 \n",
"LMM 11 Hz - Baseline II 1.2e-02, 2.3e-01 1.1e-02, 1.7e-01 \n",
"LMM 11 Hz - 30 Hz 5.2e-02, -6.2e-02 4.5e-02, -3.2e-02 \n",
"LMM Baseline II - 30 Hz 1.9e-02, 2.7e-01 2.5e-02, 1.9e-01 \n",
"\n",
" Theta freq Theta half width \\\n",
"Baseline I 7.7e+00 ± 7.5e-02 (63) 6.4e-01 ± 3.8e-02 (63) \n",
"11 Hz 7.8e+00 ± 1.3e-01 (56) 4.3e-01 ± 7.6e-02 (56) \n",
"Baseline II 8.1e+00 ± 4.4e-02 (46) 8.2e-01 ± 6.4e-02 (46) \n",
"30 Hz 7.9e+00 ± 2.0e-01 (35) 3.0e-01 ± 2.7e-02 (35) \n",
"LMM Baseline I - 11 Hz 9.8e-01, -7.5e-03 7.8e-02, 2.7e-01 \n",
"LMM Baseline I - Baseline II 7.6e-02, 2.2e-01 6.6e-01, -3.6e-02 \n",
"LMM Baseline I - 30 Hz 3.7e-01, -2.3e-01 1.1e-11, 3.8e-01 \n",
"LMM 11 Hz - Baseline II 7.1e-01, 1.4e-01 1.4e-12, 4.2e-01 \n",
"LMM 11 Hz - 30 Hz 5.5e-01, 2.8e-01 3.3e-01, -1.3e-01 \n",
"LMM Baseline II - 30 Hz 8.3e-01, 7.0e-02 6.4e-04, 4.8e-01 \n",
"\n",
" Theta vec len Theta ang \\\n",
"Baseline I 2.0e-01 ± 1.5e-02 (63) 3.7e+00 ± 1.0e-01 (63) \n",
"11 Hz 4.0e-02 ± 4.6e-03 (56) 3.3e+00 ± 2.7e-01 (56) \n",
"Baseline II 2.3e-01 ± 1.9e-02 (46) 4.0e+00 ± 1.1e-01 (46) \n",
"30 Hz 1.8e-02 ± 2.6e-03 (35) 3.8e+00 ± 3.1e-01 (35) \n",
"LMM Baseline I - 11 Hz 1.6e-03, 1.5e-01 2.0e-02, 4.3e-01 \n",
"LMM Baseline I - Baseline II 2.6e-01, -3.2e-02 6.9e-01, 1.4e-01 \n",
"LMM Baseline I - 30 Hz 9.7e-04, 1.8e-01 4.7e-01, 3.5e-01 \n",
"LMM 11 Hz - Baseline II 6.3e-04, 1.6e-01 NaN \n",
"LMM 11 Hz - 30 Hz 1.6e-02, -2.7e-02 4.0e-01, 2.8e-01 \n",
"LMM Baseline II - 30 Hz 4.9e-04, 2.0e-01 6.1e-01, 3.0e-01 \n",
"\n",
" Stim energy Stim half width \\\n",
"Baseline I NaN NaN \n",
"11 Hz 8.8e-02 ± 9.1e-03 (58) 2.2e-01 ± 6.8e-03 (58) \n",
"Baseline II NaN NaN \n",
"30 Hz 9.1e-02 ± 8.8e-03 (33) 2.5e-01 ± 4.0e-03 (33) \n",
"LMM Baseline I - 11 Hz NaN NaN \n",
"LMM Baseline I - Baseline II NaN NaN \n",
"LMM Baseline I - 30 Hz NaN NaN \n",
"LMM 11 Hz - Baseline II NaN NaN \n",
"LMM 11 Hz - 30 Hz 8.7e-01, 6.2e-03 2.7e-01, 2.8e-02 \n",
"LMM Baseline II - 30 Hz NaN NaN \n",
"\n",
" Stim p max Stim strength \\\n",
"Baseline I NaN NaN \n",
"11 Hz 4.5e-01 ± 3.1e-02 (58) 9.0e+00 ± 8.9e-01 (58) \n",
"Baseline II NaN NaN \n",
"30 Hz 3.9e-01 ± 3.3e-02 (33) 1.3e+01 ± 1.5e+00 (33) \n",
"LMM Baseline I - 11 Hz NaN NaN \n",
"LMM Baseline I - Baseline II NaN NaN \n",
"LMM Baseline I - 30 Hz NaN NaN \n",
"LMM 11 Hz - Baseline II NaN NaN \n",
"LMM 11 Hz - 30 Hz 7.5e-01, -3.0e-02 1.1e-01, 4.5e+00 \n",
"LMM Baseline II - 30 Hz NaN NaN \n",
"\n",
" Stim vec len Stim ang \n",
"Baseline I NaN NaN \n",
"11 Hz 2.2e-01 ± 1.6e-02 (58) 2.9e+00 ± 2.6e-01 (58) \n",
"Baseline II NaN NaN \n",
"30 Hz 2.5e-01 ± 1.5e-02 (33) 2.6e+00 ± 2.4e-01 (33) \n",
"LMM Baseline I - 11 Hz NaN NaN \n",
"LMM Baseline I - Baseline II NaN NaN \n",
"LMM Baseline I - 30 Hz NaN NaN \n",
"LMM 11 Hz - Baseline II NaN NaN \n",
"LMM 11 Hz - 30 Hz 6.8e-01, 3.0e-02 4.9e-01, -4.2e-01 \n",
"LMM Baseline II - 30 Hz NaN NaN "
]
},
"execution_count": 19,
"metadata": {},
"output_type": "execute_result"
}
],
"source": [
"stats['gridcell']"
]
},
{
"cell_type": "code",
"execution_count": null,
"metadata": {},
"outputs": [],
"source": [
"for cell_type, stat in stats.items():\n",
" stat.to_latex(output_path / \"statistics\" / f\"statistics_{cell_type}.tex\")\n",
" stat.to_csv(output_path / \"statistics\" / f\"statistics_{cell_type}.csv\")"
]
},
{
"cell_type": "code",
"execution_count": null,
"metadata": {},
"outputs": [],
"source": [
"for cell_type, cell_results in results.items():\n",
" for key, result in cell_results.items():\n",
" result.to_latex(output_path / \"statistics\" / f\"values_{cell_type}_{key}.tex\")\n",
" result.to_csv(output_path / \"statistics\" / f\"values_{cell_type}_{key}.csv\")"
]
},
{
"cell_type": "markdown",
"metadata": {},
"source": [
"# psd plots"
]
},
{
"cell_type": "code",
"execution_count": null,
"metadata": {},
"outputs": [],
"source": [
"from septum_mec.analysis.plotting import plot_bootstrap_timeseries"
]
},
{
"cell_type": "code",
"execution_count": null,
"metadata": {},
"outputs": [],
"source": [
"coher = pd.read_feather(output_path / 'data' / 'coherence.feather')\n",
"freqs = pd.read_feather(output_path / 'data' / 'freqs.feather')"
]
},
{
"cell_type": "code",
"execution_count": null,
"metadata": {},
"outputs": [],
"source": [
"freq = freqs.T.iloc[0].values\n",
"\n",
"mask = (freq < 100)"
]
},
{
"cell_type": "code",
"execution_count": null,
"metadata": {},
"outputs": [],
"source": [
"for cell_type in ['gridcell', 'ns_inhibited', 'ns_not_inhibited']:\n",
" fig, axs = plt.subplots(1, 2, sharex=True, sharey=True, figsize=(5,2))\n",
" axs = axs.repeat(2)\n",
" for i, (ax, query) in enumerate(zip(axs.ravel(), queries)):\n",
" selection = [\n",
" f'{r.action}_{r.channel_group}_{r.unit_name}' \n",
" for i, r in data.query(query + ' and ' + cell_type).iterrows()]\n",
" values = coher.loc[mask, selection].dropna(axis=1).to_numpy()\n",
" values = 10 * np.log10(values)\n",
" plot_bootstrap_timeseries(freq[mask], values, ax=ax, lw=1, label=labels[i], color=colors[i])\n",
" # ax.set_title(titles[i])\n",
" ax.set_xlabel('Frequency Hz')\n",
" ax.legend(frameon=False)\n",
" ax.set_ylim(-30, 0)\n",
" axs[0].set_ylabel('Coherence')\n",
" despine()\n",
" figname = f'spike-lfp-coherence-{cell_type}'.replace(' ', '-')\n",
" fig.savefig(\n",
" output_path / 'figures' / f'{figname}.png', \n",
" bbox_inches='tight', transparent=True)\n",
" fig.savefig(\n",
" output_path / 'figures' / f'{figname}.svg', \n",
" bbox_inches='tight', transparent=True)"
]
},
{
"cell_type": "markdown",
"metadata": {},
"source": [
"# NSni vs NSi analysis"
]
},
{
"cell_type": "code",
"execution_count": null,
"metadata": {},
"outputs": [],
"source": [
"nsi_vs_nsni = {}\n",
"for key in keys:\n",
" df = pd.DataFrame()\n",
" dfs = [results[k][key].loc[:, ['entity', 'unit_idnum', 'Baseline I']].rename({'Baseline I': k}, axis=1) for k in ['ns_inhibited', 'ns_not_inhibited']]\n",
" df = pd.merge(*dfs, on=['entity', 'unit_idnum'], how='outer')\n",
" nsi_vs_nsni[key] = df"
]
},
{
"cell_type": "code",
"execution_count": null,
"metadata": {},
"outputs": [],
"source": [
"nsi_vs_nsni.keys()"
]
},
{
"cell_type": "code",
"execution_count": null,
"metadata": {},
"outputs": [],
"source": [
"nsi_vs_nsni['theta_energy']"
]
},
{
"cell_type": "code",
"execution_count": null,
"metadata": {},
"outputs": [],
"source": [
"from septum_mec.analysis.statistics import LMM"
]
},
{
"cell_type": "code",
"execution_count": null,
"metadata": {},
"outputs": [],
"source": [
"LMM(nsi_vs_nsni['theta_energy'], 'ns_inhibited', 'ns_not_inhibited', 'theta_energy')"
]
},
{
"cell_type": "code",
"execution_count": null,
"metadata": {},
"outputs": [],
"source": [
"stat, stat_vals = make_statistics_table(nsi_vs_nsni, ['ns_inhibited', 'ns_not_inhibited'], wilcoxon_test=False)"
]
},
{
"cell_type": "code",
"execution_count": null,
"metadata": {},
"outputs": [],
"source": [
"stat"
]
},
{
"cell_type": "code",
"execution_count": null,
"metadata": {},
"outputs": [],
"source": [
"stat.to_latex(output_path / \"statistics\" / f\"statistics_nsi_vs_nsni.tex\")\n",
"stat.to_csv(output_path / \"statistics\" / f\"statistics_nsi_vs_nsni.csv\")"
]
},
{
"cell_type": "markdown",
"metadata": {},
"source": [
"# Store results in Expipe action"
]
},
{
"cell_type": "code",
"execution_count": null,
"metadata": {},
"outputs": [],
"source": [
"action = project.require_action(\"stimulus-spike-lfp-response\" + lfp_location)"
]
},
{
"cell_type": "code",
"execution_count": null,
"metadata": {},
"outputs": [],
"source": [
"copy_tree(output_path, str(action.data_path()))"
]
},
{
"cell_type": "code",
"execution_count": null,
"metadata": {},
"outputs": [],
"source": [
"septum_mec.analysis.registration.store_notebook(action, \"20_stimulus-spike-lfp-response.ipynb\")"
]
},
{
"cell_type": "code",
"execution_count": null,
"metadata": {},
"outputs": [],
"source": []
}
],
"metadata": {
"kernelspec": {
"display_name": "Python 3",
"language": "python",
"name": "python3"
},
"language_info": {
"codemirror_mode": {
"name": "ipython",
"version": 3
},
"file_extension": ".py",
"mimetype": "text/x-python",
"name": "python",
"nbconvert_exporter": "python",
"pygments_lexer": "ipython3",
"version": "3.6.8"
}
},
"nbformat": 4,
"nbformat_minor": 4
}