Flo Pachinger
Computer Vision from the Edge to the Cloud done easy
#1about 6 minutes
Defining computer vision and its real-world applications
Computer vision enables computers to understand digital images and videos, with applications in retail, public safety, traffic monitoring, and smart cities.
#2about 2 minutes
Understanding the key components of a vision system
A typical computer vision architecture includes cameras for recording, storage for footage, a machine learning pipeline for processing, and a dashboard for results.
#3about 3 minutes
Exploring the features of Cisco Meraki IP cameras
Cisco Meraki cameras are cloud-managed devices with on-board storage and processing for detecting people, vehicles, and audio events like fire alarms.
#4about 2 minutes
Integrating cameras using APIs, MQTT, and RTSP streams
Meraki cameras offer multiple integration points including a REST API, webhooks for cloud events, local MQTT for real-time triggers, and RTSP for video streaming.
#5about 6 minutes
Demoing real-time event detection and analysis
A live demonstration shows how a camera's local MQTT broker can trigger events for person detection in a zone and audio alarm recognition.
#6about 5 minutes
Designing an efficient event-driven vision architecture
Use on-camera analytics and MQTT triggers to send a single snapshot to a cloud vision API for analysis, reducing bandwidth and processing costs.
#7about 2 minutes
Comparing pre-trained models from AWS, Azure, and GCP
A comparison of the pre-trained computer vision models and pricing tiers available on AWS Rekognition, Azure Computer Vision, and Google Cloud Vision API.
#8about 1 minute
Deciding between pre-trained and custom vision models
While pre-trained models are easy to use, building a custom model with your own dataset is necessary for highly specific detection tasks.
#9about 3 minutes
Showcasing computer vision project examples
Practical examples demonstrate architectures for detecting face masks, capturing license plates, and using door sensors to trigger snapshots for analysis.
#10about 18 minutes
Answering audience questions on practical implementation
The Q&A session covers topics like using cameras for home security, filtering out pets from alerts, and the challenges of creating custom models for specific tasks.
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Matching moments
02:29 MIN
Exploring practical applications of network APIs
Code meets connectivity - Developers as the powerhouse of Network API innovation
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00:48 MIN
Enhancing computer vision pipelines with C-Cloudy CV
Unleashing the Full Potential of the Arm Architecture – Write Once, Deploy Anywhere
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07:54 MIN
Connecting serverless compute with cloud storage
Functions Triggers using Azure Event Grids in Azure Blob Storage
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25:09 MIN
Audience Q&A on serverless IoT development
Building your way to a serverless powered IOT Buzzwire game
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06:44 MIN
The developer's journey for building AI applications
Supercharge your cloud-native applications with Generative AI
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03:57 MIN
Building applications like intrusion and face detection
What comes after ChatGPT? Vector Databases - the Simple and powerful future of ML?
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01:41 MIN
How the developer platform supports an AI ecosystem
Fireside Chat with Cloudflare's Chief Strategy Officer, Stephanie Cohen (with Mike Butcher MBE)
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02:15 MIN
Leveraging high-value managed services as the killer app
Effective Java Strategies and Architectures for Clouds
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