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From: Adrian Klaver <adrian.klaver@aklaver.com>
To: Shaozhong SHI <shishaozhong@gmail.com>
Cc: pgsql-general <pgsql-general@lists.postgresql.org>
Subject: Re: Testing of a fast method to bulk insert a Pandas DataFrame into Postgres
Date: Mon, 4 Oct 2021 10:30:22 -0700
Message-ID: <c00dacdc-b40b-29bf-85cd-149e0d0a9608@aklaver.com> (raw)
In-Reply-To: <d883ed79-df00-5880-85fc-36a6639389c9@aklaver.com>
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	<d883ed79-df00-5880-85fc-36a6639389c9@aklaver.com>

On 10/4/21 10:28 AM, Adrian Klaver wrote:
> On 10/4/21 10:10 AM, Shaozhong SHI wrote:
>> Hello, Adrian Klaver,
>> What is the robust way to upgrade Pandas?
> 
> Carefully.
> 
> The most recent version is 1.3.3, which is approximately 5 versions 
> ahead of where you are now. The big jump is when Pandas went from 0.25 
> to 1.0. See docs here:
> 
> https://pandas.pydata.org/docs/whatsnew/v1.0.0.html?highlight=upgrade
> 
> So the process should be 0.24 -> 0.25, verify, 0.25 -> 1.0, verify. Then 
> on to wherever you want to end up a step at a time.
> 
> Before each step spend time here:
> 
> https://pandas.pydata.org/docs/whatsnew/
> 
> to see what the gotcha's are.

Should have added:

If you are not already working in a virtualenv it would be a good idea 
to do the above in one or more.

> 
> 
>> Regards,
>> David
>>
> 
> 
> 


-- 
Adrian Klaver
adrian.klaver@aklaver.com





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