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			* colors expression by KMean algorithm * object detection by imageai * object detection by cvlib * add encapsulation of object detection * remove encapsulation of objdetect v0 * objects expression to dict * [pre-commit.ci] auto fixes from pre-commit.com hooks for more information, see https://pre-commit.ci * added imageai to requirements * add objects to dictionary * update for AnalysisMethod baseline * add objects dection support explore_analysis display * extend python version of misinf to allow imageai * account for older python * use global functionality for dict to csv convert * update for docker build * docker will build now but ipywidgets still not working * test code * include test data folder in repo * add some sample images * load cvs labels to dict * add test data * retrigger checks * add map to human coding * get orders from dict, missing dep * add module to test accuracy * retrigger checks * retrigger checks * now removing imageai * removed imageai * move labelmanager to analyse * multiple faces in mydict * fix pre-commit issues * map mydict * hide imageai * objects default using cvlib, isolate and disable imageai * correct python version * refactor faces tests * refactor objects tests * sonarcloud issues * refactor utils tests * address code smells * update readme * update notebook without imageai Co-authored-by: Ma Xianghe <825074348@qq.com> Co-authored-by: pre-commit-ci[bot] <66853113+pre-commit-ci[bot]@users.noreply.github.com> Co-authored-by: iulusoy <inga.ulusoy@uni-heidelberg.de>
		
			
				
	
	
		
			104 строки
		
	
	
		
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			104 строки
		
	
	
		
			2.3 KiB
		
	
	
	
		
			Plaintext
		
	
	
	
	
	
| {
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|  "cells": [
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|   {
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|    "cell_type": "markdown",
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|    "metadata": {},
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|    "source": [
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|     "<span style =\" color : green ;font - weight : bold \">ImageAI for Object Detection</span>\n",
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|     "http://imageai.org/#features"
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|    ]
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|   },
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|   {
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|    "cell_type": "markdown",
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|    "metadata": {},
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|    "source": [
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|     "A simple, high level, easy-to-use open source Computer Vision library for Python.\n",
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|     "\n",
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|     "It was developed with a focus on enabling easy and fast experimentation. Being able to go from an idea to prototype with least amount of delay is key to doing good research.\n"
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|    ]
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|   },
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|   {
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|    "cell_type": "markdown",
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|    "metadata": {},
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|    "source": [
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|     "<p>cvlib detect_common_objects pretrained on coco dataset.</p>\n",
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|     "Underneath it uses YOLOv3 model trained on COCO dataset capable of detecting 80 common objects in context."
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|    ]
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|   },
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|   {
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|    "cell_type": "code",
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|    "execution_count": null,
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|    "metadata": {},
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|    "outputs": [],
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|    "source": [
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|     "import cv2\n",
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|     "import matplotlib.pyplot as plt\n",
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|     "import cvlib as cv\n",
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|     "from cvlib.object_detection import draw_bbox"
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|    ]
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|   },
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|   {
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|    "cell_type": "code",
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|    "execution_count": null,
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|    "metadata": {},
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|    "outputs": [],
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|    "source": [
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|     "im = cv2.imread(\"image.jpg\")\n",
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|     "\n",
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|     "bbox, label, conf = cv.detect_common_objects(im)\n",
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|     "\n",
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|     "output_image = draw_bbox(im, bbox, label, conf)\n",
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|     "\n",
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|     "plt.imshow(output_image)\n",
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|     "\n",
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|     "plt.show()"
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|    ]
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|   },
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|   {
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|    "cell_type": "code",
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|    "execution_count": null,
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|    "metadata": {},
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|    "outputs": [],
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|    "source": [
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|     "im = cv2.imread(\"image02.jpg\")\n",
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|     "\n",
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|     "bbox, label, conf = cv.detect_common_objects(im)\n",
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|     "\n",
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|     "output_image = draw_bbox(im, bbox, label, conf)\n",
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|     "\n",
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|     "plt.imshow(output_image)\n",
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|     "\n",
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|     "plt.show()"
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|    ]
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|   },
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|   {
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|    "cell_type": "code",
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|    "execution_count": null,
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|    "metadata": {},
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|    "outputs": [],
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|    "source": []
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|   }
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|  ],
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|  "metadata": {
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|   "kernelspec": {
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|    "display_name": "Python 3",
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|    "language": "python",
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|    "name": "python3"
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|   },
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|   "language_info": {
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|    "codemirror_mode": {
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|     "name": "ipython",
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|     "version": 3
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|    },
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|    "file_extension": ".py",
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|    "mimetype": "text/x-python",
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|    "name": "python",
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|    "nbconvert_exporter": "python",
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|    "pygments_lexer": "ipython3",
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|    "version": "3.7.3"
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|   }
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|  },
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|  "nbformat": 4,
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|  "nbformat_minor": 2
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| }
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