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Plantas50 image database

Introduction

The Plantas image database is composed by 9,398 images in the Plantas50Basic subset, 1,277 in the Plantas50Extra subset, and 22,661 images in the Plantas50Internet subset for 50 different species and cultivars. The Plantas50Basic and Plantas50Extra set have high-quality images taken from digital cameras and smartphones. They have a resolution of 2048x1536, and were taken at gardens and parks in Brazil during the months of December/2015 and March/2016.

Download

You can use the python downloader that will automatically download the whole database to your computer. The total size is about 16GB and you should have at least 32GB free for the download and merge operations.

To save the dataset in the same directory of the script, run:

  • python download_plantas50.py

To save in another directory, run:

  • python download_plantas50.py /path/to/dir

You can also access: https://1drv.ms/f/s!AjZCiYkckpt_g-cafayn0qe-FyIr9g and download from there. Then you can run:

  • cat Plantas50.tar.part* > Plantas50.tar

or in Windows

  • copy /b Plantas50.tar.part* Plantas50.tar

and you'll be ready to go!

BY DOWNLOADING YOU ACCEPT TO USE THE INTERNET SUBSET FOR RESEARCH OR NON-COMMERCIAL USE ONLY. SEE LEGAL SECTION.

Example

We finetuned a Mobile v2 model Plantas50 using Tensorflow and Keras as a simple example. You can check the notebook.

We also trained the Plantas50 in a Xception model in this notebook.

You can create TFRecord files by using our script:

  • python prepare_tfrecord_plantas50.py /path/to/Plantas50 or
  • python prepare_tfrecord_plantas50.py /path/to/Plantas50 HeightxWidth

Supplemental Material

Supplemental Material for the paper 'Visual Recognition of Plant Species in the Wild' can be found in the paper-data folder.

Details

Label Basic Extra Internet Extended
Agave americana 'Marginata' 201 0 240 441
Agave angustifolia 236 4 370 610
Agave attenuata 200 64 1036 1300
Agave ovatifolia 203 3 318 524
Allamanda blanchetii 201 0 380 581
Allamanda cathartica 200 4 1002 1206
Alpinia purpurata 201 0 1137 1338
Anthurium andraeanum 201 120 760 1081
Beaucarnea recurvata 191 11 763 965
Begonia × hybrida 100 0 226 326
Bismarckia nobilis 197 4 556 757
Bougainvillea glabra 196 4 726 926
Buxus microphylla 219 24 195 438
Callistemon spp 202 4 415 621
Clerodendrum × speciosum 201 63 174 438
Codiaeum variegatum 'Aureo-maculatum' 221 0 87 308
Cordyline fruticosa 201 1 551 753
Cupressus sempervirens 200 85 315 600
Cycas revoluta 221 91 833 1145
Cycas thouarsii 203 4 225 432
Davallia fejeensis 200 77 136 413
Dianella ensifolia 199 3 211 413
Dieffenbachia amoena 88 3 218 309
Dracaena marginata 115 88 248 451
Duranta erecta 'Gold Mound' 200 0 89 289
Dypsis lutescens 203 89 410 702
Echeveria glauca 200 114 290 604
Eugenia sprengelii 209 23 26 258
Hibiscus rosa-sinensis 211 3 1208 1422
Impatiens hawkeri 100 0 549 649
Ixora coccinea 200 32 617 849
Ixora coccinea 'Compacta' 201 117 215 533
Justicia brandegeana 214 0 600 814
Leea guineensis 100 5 59 164
Loropetalum chinense 204 2 729 935
Monstera deliciosa 220 0 806 1026
Nematanthus wettsteinii 191 48 97 336
Nerium oleander 195 12 1236 1443
Ophiopogon jaburan 210 6 123 339
Philodendron imbe 225 0 20 245
Philodendron martianum 97 3 120 220
Phoenix roebelenii 213 2 330 545
Podocarpus macrophyllus 98 2 374 474
Rhapis excelsa 201 75 687 963
Rhododendron simsii 218 0 485 703
Russelia equisetiformis 205 9 641 855
Strelitzia reginae 200 67 1075 1342
Syngonium angustatum 198 2 38 238
Zamioculcas zamiifolia 97 3 490 590
Zinnia peruviana 191 7 225 423

Legal

Creative Commons License
Plantas50Basic and Plantas50Extra by Rene Octavio Queiroz Dias are licensed under a Creative Commons Attribution 4.0 International License.

Some images of Plantas50Internet subset may have copyright. Training and using recognition model for research or non-commercial use may constitute fair use of data.

All code is under MIT license, unless stated otherwise in the header of the code. Or according to LICENSE or COPYING files inside the folders.

Citation

If the Plantas50 database was useful in your publications, please cite:

@inproceedings{plantas-db-2016,
author={Dias, Ren{\'e} Octavio Queiroz and Borges, D{\'i}bio Leandro},
booktitle={2016 IEEE International Symposium on Multimedia (ISM)},
title={Recognizing Plant Species in the Wild: Deep Learning Results and a New Database},
year={2016},
pages={197-202},
doi={10.1109/ISM.2016.0047},
isbn={978-1-5090-4571-6/16},
url={https://doi.org/10.1109/ISM.2016.0047},
month={Dec},}

Master Thesis

If you are interested in how all these models work, you can check my Master Thesis.