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+ W.A.L.D.O.
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+ Whereabouts Ascertainment for Low-lying Detectable Objects !
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+ ---------------------------------------------------------------------
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+ Welcome to the WALDO v2.5 FINAL release! 🥳🥳🥳🥳
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+ ![fe361d16-c588-47ad-bff4-1c5185c0cd9f](https://github.com/stephansturges/WALDO/assets/20320678/3a5ad37c-db34-4d71-8a88-325672427b7a)
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+ ---------------------------------------------------------------------
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+
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+ Thanks to all participants in the beta! I had over 3000 sign-ups for the
13
+ beta release and iterated really fast... I hope you'll like the result!
14
+
15
+ I am assuming you have some experience with deployment of AI systems,
16
+ but if you have any trouble using this release you can contact me at
17
+ stephan.sturges at gmail
18
+
19
+ ---------------------------------------------------------------------
20
+
21
+
22
+ WHAT IS WALDO?
23
+
24
+ WALDO is a detection AI model, based on a large YOLO-v7 backbone and my own
25
+ synthetic data pipeline. The basic model shared here, which is the only
26
+ one published as FOSS at the moment, is capable of detecting these classes
27
+ of items in overhead images ranging in altitude from about 30 feet to
28
+ satellite imagery with a resolution of 50cm per pixel or better.
29
+
30
+
31
+ Well trained classes:
32
+ 1. 'car' --> all kinds of civilan cars, including pickup trucks
33
+ 2. 'van' --> all kinds of civilian vans, gets confused with "car" a lot. You might want to fuse them! 🚗
34
+ 3. 'truck' --> all kinds of box-trucks, flatbeds or articulated trucks, NOT small pickup trucks 🚚
35
+ 4. 'building' --> buildings of all kinds 🏣
36
+ 5. 'human' --> people! 🧍
37
+ 6. 'gastank'--> cylindrical tanks such as butane tanks and gas expansion tanks, or grain silos 🫙
38
+ 7. 'digger' --> all kinds of construction vehicles, including tractors and construction gear 🚜
39
+ 8. 'container' --> shipping containers, including on the back of an articulated truck
40
+ 9. 'bus' --> a bus 🚌
41
+ 10. 'u_pole' --> utility poles, power poles, anything thin and sticking up that you should avoid with a plane 🎏
42
+ 11. 'boat' --> boats 🚢
43
+ 12. 'bike' --> bikes, mopeds, motorbikes, all things with 2 wheels 🚲
44
+ 13. 'smoke' --> smoke and fire 🔥🔥🔥
45
+ 14. 'solarpanels' --> solar panels
46
+ 15. 'arm/mil' --> this class detects certain types of armored vehicles (very unreliable for now, don't use it yet)
47
+ 16. 'plane' --> planes (very unreliable for now, probably not worth using yet)
48
+
49
+
50
+ ---------------------------------------------------------------------
51
+
52
+ WHERE IS WALDO?
53
+
54
+ Due to the size of the model files and the constraints of github LFS the files
55
+ are no longer stored directly on Github, please download the latest package
56
+ using the link below:
57
+
58
+ https://bit.ly/3P7UdZ6
59
+
60
+
61
+ ---------------------------------------------------------------------
62
+
63
+ FOR AI NERDS !
64
+
65
+ It's a big set of YOLOv7 model, trained on my own datasets of synthetic and "augmented" / semi-synthetic data.
66
+ I'm not going to release the dataset for the time being.
67
+
68
+ The ONNX models are exported for onnx-runtime with a batch-size of 1 and a max input size corresponding to the
69
+ the network dimensions. They are also set up to export only the top 200 highest-confidence objects in most cases.
70
+
71
+ I'm planning to set up a way for people to get the .pt files and the ONNX models with unlimited outputs
72
+ for people who support further development of the project on Ko-Fi (https://ko-fi.com/stephansturges), the goal
73
+ being to offset some of the cost of training these networks (over 60K USD spent on AWS to date! 😅)
74
+
75
+
76
+ ---------------------------------------------------------------------
77
+
78
+ HOW CAN I START WITH WALDO?
79
+
80
+ Setup the environment with python3:
81
+ 1. (optional) create a virtual python env for the project
82
+ 2. install dependencies using the requirements file: pip install -r requirements.txt
83
+
84
+ You may need to install a couple of other bits and pieces depending on your python3 env...
85
+ If you find anything really blocking send me an email and I'll update this readme.
86
+
87
+
88
+ ---------------------------------------------------------------------
89
+
90
+ RUN THE MODELS USING THE BOILERPLATE CODE IN /playground:
91
+
92
+ 1. To run on video:
93
+ put one or multiple .mp4 files in the ./input_vids subfolder, and copy
94
+ one or more .onnx model files to the /playground folder, ALL of the videos
95
+ in the ./input_vids folder will be processed with EACH of the .onnx files
96
+ that you put in the ./playground folder (useful for comparison of models!)
97
+
98
+ ...and then run:
99
+
100
+ python3 run_local_network_on_videos_onnxruntime.py
101
+
102
+ This will run the detection network in default settings and save an annotated video to
103
+ the ./output_vids/ subfolder.
104
+
105
+ You can also use the following command-line arguments:
106
+
107
+ python3 run_local_network_on_videos_onnxruntime.py --frame_limit 3000 --frame_skip 8
108
+
109
+
110
+ "frame limit" defines where to stop processing the video, if you only want to test it
111
+ on the first 1000 frame then use --frame_limit 1000 for example
112
+
113
+ "frame skip" allows you to skip frames to keep processing quicker for testing, so
114
+ if your video is 30 fps and you only one 1 frame per second to be AI-annotated
115
+ then you can use --frame_skip 30 for instance
116
+
117
+
118
+ 2. To run on a single image of any size:
119
+
120
+ Put some images in ./images_in/ and run:
121
+
122
+ python3 run_local_network_on_images_onnxruntime.py --model "/path_to_your_preferred_onnx_model.onnx"
123
+
124
+ "model" is a REQUIRED arguemnt which accepts a path, pointing to the ONNX model you want to use
125
+ to process the files.
126
+
127
+ This will run detection on all images in the input folder and save the annotated
128
+ output images in the output folder, along with the txt files of the detections
129
+ in YOLO format.
130
+
131
+ If the image is LARGER than 960x960px format it will be tiled into squares of 960px with
132
+ a litte overlap for analysis and then merged back together, so you can process
133
+ huge satellite images for example without needing to split them first.
134
+
135
+ If you want to run the network on a single image that should be processed at native resolution
136
+ you can use the OPTIONAL "--resize" flag like this:
137
+
138
+ python3 run_local_network_on_images_onnxruntime.py --model "/path_to_your_preferred_onnx_model.onnx" --resize
139
+
140
+ The output can be found in ./images_out/, you'll get images with pretty overlays and .txt files
141
+ with the actual detections
142
+
143
+
144
+ ---------------------------------------------------------------------
145
+
146
+
147
+
148
+ WHAT IS INCLUDED?
149
+
150
+ In the FOSS package there are a bunch of networks in ONNX format prepared for ONNXruntime, as
151
+ well as a few examples of networks in other export formats. Only the "V7-base/square/416px"
152
+ network is included in all formats as part of this release, meaning you get a selection of
153
+ ONNX exported models including some quantized and prepared for Nvidia TensorRT, and you
154
+ also have the raw .pt files for the training run so that you can export your own.
155
+ I also added the base .pt files for the 512px V7 model.
156
+ These files also exist for each other network (or can be exported), but I'm thinking about
157
+ how to make those available for people who support the future development of WALDO in order
158
+ to support the cost of AI model training (which is over 50K $ already up to this point).
159
+ Reach out to me via email if you want a model / export that isn't in here!
160
+
161
+
162
+ /!\ Some tips for use:
163
+ - In real-world use cases you may want to merge classes 1 & 2 since there this still
164
+ a lot of confusion between those classes
165
+ - The models are exported with non-maximum-suppression, so if you are using the
166
+ AI system in cases where objects are occluded by one another you will only get
167
+ the "most valid" object in most cases.
168
+
169
+
170
+ Some of the network that is in this repo is very large, and is meant to be run on
171
+ an inference server, and some are made for embedding on tiny edge devices... take
172
+ a look around and find one that works for you!
173
+
174
+
175
+ ---------------------------------------------------------------------
176
+
177
+ GOING DEEPER
178
+
179
+ Of course if you know your way around deploying AI models there is a lot more you do
180
+ with this release, inclusing:
181
+
182
+ 1. There are certain models already released in CoreML format for iOS, give those a try
183
+ 2. There are some models that are exported for TensorRT, including some cool quantization!
184
+ 3. For a couple of models the .pt files are included in this release, play with making
185
+ your own exports or running thos directly using YOLOv7 from https://github.com/WongKinYiu/yolov7
186
+ 4. Get yourself a cool, cheap, little AI camera from Luxonis and run one of the OpenVino blobs
187
+ that are currently exported for the V7-base/416px network and the V7-tiny/512px network. These
188
+ are super cool and do excellent AI detections directly on 15g hardware that costs <200$... crazy stuff.
189
+ 5. Build your own commercial application!
190
+
191
+
192
+ Enjoy!
193
+
194
+ ---------------------------------------------------------------------
195
+
196
+
197
+
198
+ PREVIOUS VERSIONS
199
+
200
+ You can find the repo with WALDO v1.0 here:
201
+ https://github.com/stephansturges/WALDO
202
+
203
+
204
+ ---------------------------------------------------------------------
205
+
206
+
207
+ CAN YOU HELP ME WITH X?
208
+
209
+ Sure, email me at stephan.sturges@gmail.com
210
+
211
+
212
+ ---------------------------------------------------------------------
213
+
214
+
215
+ DETECTION OF X ISN'T WORKING AS EXPECTED:
216
+
217
+ I'd love to see example images, videos, sample data, etc at:
218
+ stephan.sturges@gmail.com
219
+
220
+
221
+ HOW DOES AIRCORTEX MAKE MONEY?
222
+
223
+ Aircortex' mission statement is to make the SOTA in ground-risk AI and sensing,
224
+ and to make the basic models free and easy to use for both hobbyists and
225
+ professionals in the UAV / AAM industry, to acclerate safe access to the skies
226
+ in the 21st century.
227
+
228
+
229
+ Aircortex is an "open-core" AI company: the basic model is completely
230
+ free and open-source for anyone to use including in commercial products.
231
+
232
+ I make money by charging for:
233
+ 1. help with training additional detection classes,
234
+ 2. retraining for your specific hardware,
235
+ 3. building the software stack to support specific deployment cases,
236
+ 4. helping companies set up the right hardware architecture for AI integration,
237
+ 5. custom hardware setups for specific environments
238
+ 6. more "feature-complete" versions of my FOSS products such as integrating 3D perception
239
+ etc...
240
+
241
+ Contact me at stephan.sturges@gmail.com to find out more.
242
+
243
+ ---------------------------------------------------------------------
244
+
245
+ SUPPORT WALDO!
246
+
247
+ Training this base model took about 3 months of work and ~20K$ in cloud compute.
248
+ If you find value in it, please support development of the next version on:
249
+ https://ko-fi.com/stephansturges
250
+
251
+ You can also sign-up there to be a sponsor of WALDO for 500$ / month and get
252
+ early access to future models.
253
+
254
+ ____ ____ ____ ____ ____ ____ ____ ____ ____ ____
255
+ /\____/\/\____/\/\____/\/\____/\/\____/\/\____/\/\____/\/\____/\/\____/\/\___
256
+ \/____\/\/____\/\/____\/\/____\/\/____\/\/____\/\/____\/\/____\/\/____\/\/___
257
+
258
+
259
+ LICENSE
260
+ ----------------------------------------------------------------------------
261
+
262
+ Unless otherwise specified all code in this release is published with the
263
+ licence conditions below.
264
+ ----------------------------------------------------------------------------
265
+
266
+
267
+ MIT License
268
+
269
+ Copyright (c) 2023 Stephan Sturges / Aircortex.com
270
+
271
+ Permission is hereby granted, free of charge, to any person obtaining a copy
272
+ of this software and associated documentation files (the "Software"), to deal
273
+ in the Software without restriction, including without limitation the rights
274
+ to use, copy, modify, merge, publish, distribute, sublicense, and/or sell
275
+ copies of the Software, and to permit persons to whom the Software is
276
+ furnished to do so, subject to the following conditions:
277
+
278
+ The above copyright notice and this permission notice shall be included in all
279
+ copies or substantial portions of the Software.
280
+
281
+ THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
282
+ IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
283
+ FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL THE
284
+ AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
285
+ LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM,
286
+ OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE
287
+ SOFTWARE.
288
+
289
+
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