A Deep Learning Generative Model Approach for Image Synthesis of Plant Leaves
Alessandro Benfenati, Davide Bolzi, Paola Causin, Roberto, Oberti

TL;DR
This paper introduces a deep learning-based method to generate realistic synthetic images of plant leaves, aiding crop management by providing abundant training data without extensive manual annotation.
Contribution
It proposes a novel two-step Leaf-to-Leaf translation framework combining autoencoders and adversarial networks for realistic leaf image synthesis.
Findings
Synthetic leaves have realistic appearance and shape.
Quantitative analysis shows low anomaly scores for generated images.
The approach can augment datasets for AI-based crop management.
Abstract
Objectives. We generate via advanced Deep Learning (DL) techniques artificial leaf images in an automatized way. We aim to dispose of a source of training samples for AI applications for modern crop management. Such applications require large amounts of data and, while leaf images are not truly scarce, image collection and annotation remains a very time--consuming process. Data scarcity can be addressed by augmentation techniques consisting in simple transformations of samples belonging to a small dataset, but the richness of the augmented data is limited: this motivates the search for alternative approaches. Methods. Pursuing an approach based on DL generative models, we propose a Leaf-to-Leaf Translation (L2L) procedure structured in two steps: first, a residual variational autoencoder architecture generates synthetic leaf skeletons (leaf profile and veins) starting from companions…
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Taxonomy
TopicsSmart Agriculture and AI · Remote Sensing in Agriculture · Tree Root and Stability Studies
Methods*Communicated@Fast*How Do I Communicate to Expedia? · PatchGAN · Batch Normalization · Convolution · Concatenated Skip Connection · Sigmoid Activation · HuMan(Expedia)||How do I get a human at Expedia? · Dropout · Colorization · Pix2Pix
