8

I have tried many libraries, but it seems that I cannot get the types to match.

Typical attempt:

using SomeLib, CSV
fh = SomeLib.open("gzipped_file.gz")
CSV.read(fh) # error

Example:

using CodecZlib
CSV.read(GzipDecompressorStream(open("gzipped_file.gz")))
# ERROR: MethodError: no method matching position(::TranscodingStreams.TranscodingStream{GzipDecompressor,IOStream})
1
  • 2
    Seems that CodecZlib does not implement all IO API that CSV.read relies on. Probably it is worth to make an Issue on GitHub. Oct 1, 2018 at 12:43

4 Answers 4

7

In the meantime you can use CSVFiles.jl:

using CSVFiles, DataFrames, FileIO

open("yourfile.csv.gz") do io
    load(Stream(format"CSV", GzipDecompressorStream(io))) |> DataFrame
end
2
  • Is Using CodecZlib required for GzipDecompressorStream?
    – Anish
    Aug 4, 2021 at 14:03
  • 1
    This is an old answer. Here github.com/JuliaData/CSV.jl/pull/864 you have the state of the issue - in short: very soon (days) you will be able to read gzipped files out of the box with CSV.jl. Aug 4, 2021 at 14:55
4

Adding to Bogumił's answer, you can do the following as well:

using CSV
using GZip

df = GZip.open("some_file.csv.gz", "r") do io
    CSV.read(io)
end
0

Even more simple:

using CSVFiles, DataFrames
df = DataFrame(load(File(format"CSV", "data.csv.gz")))
0

My new package TableReader.jl supports transparent gzip, xz, and zstd decompression. So, the following code will work as you expect:

using TableReader

readcsv("path/to/file.csv.gz")
readcsv("path/to/file.csv.xz")
readcsv("path/to/file.csv.zst")

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