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Dockerfile
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# Dockerfile may have following Arguments:
# tag - tag for the Base image, (e.g. 2.9.1 for tensorflow)
# branch - user repository branch to clone (default: master, another option: test)
#
# To build the image:
# $ docker build -t <dockerhub_user>/<dockerhub_repo> --build-arg arg=value .
# or using default args:
# $ docker build -t <dockerhub_user>/<dockerhub_repo> .
#
# [!] Note: For the Jenkins CI/CD pipeline, input args are defined inside the
# Jenkinsfile, not here!
ARG tag=2.9.1
# Base image, e.g. tensorflow/tensorflow:2.9.1
FROM tensorflow/tensorflow:${tag}
LABEL maintainer='Carolin Leluschko'
LABEL version='0.0.1'
# Integration of DeepaaS API and litter assessment software
# What user branch to clone [!]
ARG branch=main
# Install Ubuntu packages
# - gcc is needed in Pytorch images because deepaas installation might break otherwise (see docs) (it is already installed in tensorflow images)
RUN DEBIAN_FRONTEND=noninteractive apt-get update && \
apt-get install -y --no-install-recommends \
gcc \
git \
curl \
nano \
&& rm -rf /var/lib/apt/lists/*
# Update python packages
RUN python3 --version && \
pip3 install --no-cache-dir --upgrade pip "setuptools<60.0.0" wheel
# TODO: remove setuptools version requirement when [1] is fixed
# [1]: https://github.com/pypa/setuptools/issues/3301
# Set LANG environment
ENV LANG C.UTF-8
# Set the working directory
WORKDIR /srv
# Install rclone (needed if syncing with NextCloud for training; otherwise remove)
RUN curl -O https://downloads.rclone.org/rclone-current-linux-amd64.deb && \
dpkg -i rclone-current-linux-amd64.deb && \
apt install -f && \
mkdir /srv/.rclone/ && \
touch /srv/.rclone/rclone.conf && \
rm rclone-current-linux-amd64.deb && \
rm -rf /var/lib/apt/lists/*
ENV RCLONE_CONFIG=/srv/.rclone/rclone.conf
# Initialization scripts
# deep-start can install JupyterLab or VSCode if requested
RUN git clone https://github.com/deephdc/deep-start /srv/.deep-start && \
ln -s /srv/.deep-start/deep-start.sh /usr/local/bin/deep-start
# Necessary for the Jupyter Lab terminal
ENV SHELL /bin/bash
# Install user app
RUN git clone --depth 1 -b $branch https://github.com/DFKI-NI/litter_assessment_service && \
cd litter_assessment_service && \
pip3 install --no-cache-dir -e . && \
cd ..
# Download network weights
ENV SWIFT_CONTAINER https://data-deep.a.incd.pt/index.php/s/Zsz2NLxPjb52s5y/download/
ENV MODEL_TAR aplastic_q_models.tar.gz
RUN curl --insecure -o ./litter_assessment_service/models/${MODEL_TAR} \
${SWIFT_CONTAINER}${MODEL_TAR}
RUN cd litter_assessment_service/models && \
tar -xf ${MODEL_TAR}
RUN cd litter_assessment_service
# Open ports: DEEPaaS (5000), Monitoring (6006), IDE (8888)
EXPOSE 5000 6006 8888
# Launch deepaas
CMD ["deepaas-run", "--listen-ip", "0.0.0.0", "--listen-port", "5000"]