
Google Cloud Dataflow
Amazon EMR
Google BigQuery
Qubole
Snowflake
Databricks
Apache Beam
Amazon Kinesis
Diff Anything
Beyond Compare
Diff Anything chooses a comparison engine that understands the inputs. Text uses a focused side-by-side diff, JSON and other structured formats compare semantic paths, CSV can match rows by key, folders recurse with ignore rules, and images add pixel heatmaps, overlay, and blink views. Compared files never leave the computer. There are no accounts, cloud comparison services, analytics, or telemetry. CLI and Git difftool modes make the same comparison model available in scripts and source-control workflows.
Google Cloud Dataflow
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Diff Anything's answer:
Diff Anything is a local-first desktop comparison and merge application that selects a comparison model for the inputs. It supports focused text diffs, semantic paths for JSON and other structured formats, key-based CSV matching, recursive folder comparison with ignore rules, and image heatmap, overlay, and blink views. Compared files stay on the computer, with no account, cloud comparison service, analytics, or telemetry.
Diff Anything's answer:
Diff Anything is a fit when you need one private desktop workflow for mixed artifacts rather than only plain text. It can compare text, structured data, CSV, folders, archives, documents, API schemas, HTTP responses, images, and binaries locally. CLI and Git difftool modes also make the same comparison model available in scripts and source-control workflows.
Diff Anything's answer:
Diff Anything is primarily for developers comparing mixed release artifacts, teams reviewing configuration or API changes, and people who need to inspect sensitive local files without uploading their content or creating an account.
Based on our record, Google Cloud Dataflow seems to be more popular. It has been mentiond 14 times since March 2021. We are tracking product recommendations and mentions on various public social media platforms and blogs. They can help you identify which product is more popular and what people think of it.
Imo if you are using the cloud and not doing anything particularly fancy the native tooling is good enough. For AWS that is DMS (for RDBMS) and Kinesis/Lamba (for streams). Google has Data Fusion and Dataflow . Azure hasData Factory if you are unfortunate enough to have to use SQL Server or Azure. Imo the vendored tools and open source tools are more useful when you need to ingest data from SaaS platforms, and... Source: over 3 years ago
This sub is for Apache Beam and Google Cloud Dataflow as the sidebar suggests. Source: almost 4 years ago
I am pretty sure they are using pub/sub with probably a Dataflow pipeline to process all that data. Source: almost 4 years ago
You can run a Dataflow job that copies the data directly from BQ into S3, though you'll have to run a job per table. This can be somewhat expensive to do. Source: almost 4 years ago
It was clear we needed something that was built specifically for our big-data SaaS requirements. Dataflow was our first idea, as the service is fully managed, highly scalable, fairly reliable and has a unified model for streaming & batch workloads. Sadly, the cost of this service was quite large. Secondly, at that moment in time, the service only accepted Java implementations, of which we had little knowledge... - Source: dev.to / over 4 years ago
Amazon EMR - Amazon Elastic MapReduce is a web service that makes it easy to quickly process vast amounts of data.
Beyond Compare - Beyond Compare allows you to compare files and folders.
Google BigQuery - A fully managed data warehouse for large-scale data analytics.
Qubole - Qubole delivers a self-service platform for big aata analytics built on Amazon, Microsoft and Google Clouds.
Snowflake - Snowflake is the only data platform built for the cloud for all your data & all your users. Learn more about our purpose-built SQL cloud data warehouse.
Databricks - Databricks provides a Unified Analytics Platform that accelerates innovation by unifying data science, engineering and business.โWhat is Apache Spark?