You&#39;ll have to [create a new `timedelta`][1] with the specified amount of time:
    
    d &gt; timedelta(minutes=1)

Or this slightly more complete script will help elaborate:

    import datetime
    from time import sleep
    
    start = datetime.datetime.now()
    sleep(3)
    stop = datetime.datetime.now()
    
    elapsed = stop - start
    
    if elapsed &gt; datetime.timedelta(minutes=1):
        print &quot;Slept for &gt; 1 minute&quot;
    
    if elapsed &gt; datetime.timedelta(seconds=1):
        print &quot;Slept for &gt; 1 second&quot;


Output:

`Slept for &gt; 1 second`



  [1]: http://docs.python.org/library/datetime.html#datetime.timedelta

You just need to create `timedelta` object from scratch, comparison after that is trivial:

    &gt;&gt;&gt; a = datetime.timedelta(minutes=1)
    &gt;&gt;&gt; b = datetime.timedelta(minutes=1, seconds=1)
    &gt;&gt;&gt; a &lt; b
    True
    &gt;&gt;&gt; a &gt; b
    False



Correct me if I&#39;m wrong but I think that you could also use the following:

Instead of 

    if elapsed &gt; datetime.timedelta(seconds=1):


You could say 

    if elapsed.seconds &gt; 1:

    if d.total_seconds() &gt; 60:
      print(&quot;elapsed time is greater than 1 minute&quot;)

but it requires python 2.7+

With `WebDriver` from Selenium 2.0a2 I am having trouble checking if an element is visible.

`WebDriver.findElement` returns a `WebElement`, which unfortunately doesn&#39;t offer an `isVisible` method. I can go around this by using `WebElement.clear` or `WebElement.click` both of which throw an `ElementNotVisibleException`, but this feels very dirty.

Any better ideas?

How to check if an element is visible with WebDriver

What I am trying to do is have rows of images, 6 images in each row.  Some of these images need to have another image floating on top of them (flush with the lower-right corner). I was able to get that to work from this thread:

https://stackoverflow.com/questions/48474/how-do-i-position-one-image-on-top-of-another-in-html

However, now I&#39;m unable to get the new row after the 6th image. Neither `&lt;BR&gt;` or `&lt;P&gt;` create a new line. They simply push the next image down several pixels, but the image is still in the same line. It seems like the float style is interfering with the `&lt;BR&gt;` and/or `&lt;P&gt;`.

I tried using different styles for the image that starts a new row, like `float:none` and `display:block`, but neither worked. The odd thing is that the new line starts **after** the 7th image. 

Here&#39;s what I&#39;m using so far:

    &lt;style type=&quot;text/css&quot;&gt; 
    .containerdiv { float: left; position: relative; } 
    .containerdivNewLine { float: none; display: block; position: relative; } 
    .cornerimage { position: absolute; bottom: 0; right: 0; } 
    &lt;/style&gt;
    
    &lt;div class=&quot;containerdiv&quot;&gt;
      &lt;img border=&quot;0&quot; height=&quot;188&quot; src=&quot;myImg&quot; width=&quot;133&quot; /&gt;
      &lt;img class=&quot;cornerimage&quot; height=&quot;140&quot; src=&quot;imageOnTop&quot; width=&quot;105&quot; /&gt;
    &lt;/div&gt;

For the 7th image, when I&#39;m trying to start a new row, I&#39;m simply replacing the &#39;containerdiv&#39; class with &#39;containerdivNewLine&#39;.

how do I get a new line, after using float:left?

I have a variable which is `&lt;type &#39;datetime.timedelta&#39;&gt;` and I would like to compare it against certain values. 

Lets say d produces this `datetime.timedelta` value `0:00:01.782000`

I would like to compare it like this:

    #if d is greater than 1 minute 
    if d&gt;1:00:
      print &quot;elapsed time is greater than 1 minute&quot;

I have tried converting `datetime.timedelta.strptime()` but that does seem to work. Is there an easier way to compare this value?




Comparing a time delta in python

I have a variable which is <code>&#x3C;type 'datetime.timedelta'></code> and I would like to compare it against certain values.
Lets say d produces this <code>datetime.timedelta</code> value <code>0:00:01.782000</code>
I would like to compare it like this:
<pre><code class="hljs language-bash">#if d is greater than 1 minute 
if d>1:00:
 print "elapsed time is greater than 1 minute"
</code></pre>
I have tried converting <code>datetime.timedelta.strptime()</code> but that does seem to work. Is there an easier way to compare this value?

From the [Google Open Source Blog][1]:

&gt; PyPy is a reimplementation of Python
&gt; in Python, using advanced techniques
&gt; to try to attain better performance
&gt; than CPython. Many years of hard work
&gt; have finally paid off. Our speed
&gt; results often beat CPython, ranging
&gt; from being slightly slower, to
&gt; speedups of up to 2x on real
&gt; application code, to speedups of up to
&gt; 10x on small benchmarks.

How is this possible? Which Python implementation was used to implement PyPy? [CPython][2]? And what are the chances of a PyPyPy or PyPyPyPy beating their score?

(On a related note... why would anyone try something like this?)


  [1]: http://google-opensource.blogspot.com/2010/04/pypy-12-released.html
  [2]: http://python.org

PyPy -- How can it possibly beat CPython?

In a python source code I stumbled upon I&#39;ve seen a small **b** before a string like in:

    b&quot;abcdef&quot;

I know about the **`u`** prefix signifying a unicode string, and the **`r`** prefix for a raw string literal. 

What does the `b` stand for and in which kind of source code is it useful as it seems to be exactly like a plain string without any prefix?

What does a b prefix before a python string mean?

From the Python 2.6 shell:

    &gt;&gt;&gt; import sys
    &gt;&gt;&gt; print sys.getdefaultencoding()
    ascii
    &gt;&gt;&gt; print u&#39;\xe9&#39;
    &#233;
    &gt;&gt;&gt; 

I expected to have either some gibberish or an Error after the print statement, since the &quot;&#233;&quot; character isn&#39;t part of ASCII and I haven&#39;t specified an encoding. I guess I don&#39;t understand what ASCII being the default encoding means.

**EDIT**

[I moved the edit to the **Answers** section and accepted it as suggested.][1]


  [1]: https://stackoverflow.com/questions/2596714/why-does-python-print-unicode-characters-when-the-default-encoding-is-ascii/21968640#21968640

Why does Python print unicode characters when the default encoding is ASCII?

I want to use a bunch of local variables defined in a function, outside of the function. So I am passing `x=locals()` in the return value. 

How can I load all the variables defined in that dictionary into the namespace outside the function, so that instead of accessing the value using `x[&#39;variable&#39;]`, I could simply use `variable`.

Python: load variables in a dict into namespace

Which is the best data structure that can be used to implement a binary tree in Python?

How to implement a binary tree?

I have 2 asp.net texboxes with calendar extender. I want to find out the number of days between both dates when one of the date control is changed. how can I achieve this using jquery or javascript?


JQuery Calculate Day Difference in 2 date textboxes

In Ruby/Rails, how do I convert a UTC DateTime to another time zone?

Rails: convert UTC DateTime to another time zone

I have recently updated my system to record date/times as UTC as previously they were storing as local time.

I now need to convert all the local stored date/times to UTC. I was wondering if there is any built in function, similar to .NET&#39;s `ConvertTime` method?

I am trying to avoid having to write a utility app to do this for me.

Any suggestions?

SQL Server - Convert date field to UTC

I want to compare UTC timestamps from a log file with local timestamps. When creating the local `datetime` object, I use something like:

    &gt;&gt;&gt; local_time=datetime.datetime(2010, 4, 27, 12, 0, 0, 0, 
                                     tzinfo=pytz.timezone(&#39;Israel&#39;))

I want to find an automatic tool that would replace the`tzinfo=pytz.timezone(&#39;Israel&#39;)` with the current local time zone.

Any ideas?



Python: Figure out local timezone

I have a question: Is it possible to select from a MySQL database by comparing one DATE string &quot;2010-04-29&quot; against strings that are stored as DATETIME (2010-04-29 10:00)?

I have one date picker that filters data and I would like to query the table by the DATETIME field like this:

    SELECT * FROM `calendar` WHERE startTime = &#39;2010-04-29&#39;&quot;

...and I would like to get the row that has the DATETIME value of &quot;2010-04-29 10:00&quot;.

Any suggestions? Thanks.


MySQL compare DATE string with string from DATETIME field

I&#39;m writing a function that needs to parse string to a `timedelta`. The user must enter something like `&quot;32m&quot;` or `&quot;2h32m&quot;`, or even `&quot;4:13&quot;` or `&quot;5hr34m56s&quot;`... Is there a library or something that has this sort of thing already implemented?

How to construct a timedelta object from a simple string

In Python, how do I get a datetime object for &#39;3 years ago today&#39;?

UPDATE: FWIW, I don&#39;t care hugely about accuracy... i.e. it&#39;s Feb 29th today, I don&#39;t care whether I&#39;m given Feb 28th or March 1st in my answer. Concision is more important than configurability, in this case.

Python: get datetime for &#39;3 years ago today&#39;

I have two `datetime.time` values, `exit` and `enter` and I want to do something like:

    duration = exit - enter

However, I get this error:

&gt; TypeError: unsupported operand type(s) for -: &#39;datetime.time&#39; and
&gt; &#39;datetime.time
                       
How do I do this correctly? One possible solution is converting the `time` variables to `datetime` variables and then subtruct, but I&#39;m sure you guys must have a better and cleaner way.


subtract two times in python

Given the python code below, please help me understand what is happening there.

    start_time = time.time()
    time.sleep(42)
    end_time = time.time()

    uptime = end_time - start_time

    human_uptime = str(datetime.timedelta(seconds=int(uptime)))

So I get the difference between `start time` and `end time`, on line 5 I round up the duration by casting and what now, what&#39;s the further explanation?

I know what delta means(average or difference), but why do I have to pass `seconds = uptime` to `timedelta` and why does the string casting works so nicely that I get `HH:MM:SS` ?

Understanding timedelta

I have a date `&quot;10/10/11(m-d-y)&quot;` and I want to add 5 days to it using a Python script. Please consider a general solution that works on the month ends also.

I am using following code:

    import re
    from datetime import datetime
    
    StartDate = &quot;10/10/11&quot;
    
    Date = datetime.strptime(StartDate, &quot;%m/%d/%y&quot;)

`print Date` -&gt; is printing `&#39;2011-10-10 00:00:00&#39;`

Now I want to add 5 days to this date. I used the following code:

    EndDate = Date.today()+timedelta(days=10)

Which returned this error:

    name &#39;timedelta&#39; is not defined

Content Type	Original Author	Original Content on Stackoverflow
Question	Alpesh Patel	View Question on Stackoverflow
Solution 1 - Python	Mark Rushakoff	View Answer on Stackoverflow
Solution 2 - Python	SilentGhost	View Answer on Stackoverflow
Solution 3 - Python	Argyrios Tzakas	View Answer on Stackoverflow
Solution 4 - Python	max	View Answer on Stackoverflow

Comparing a time delta in python

Python Problem Overview

Python Solutions

Solution 1 - Python

Solution 2 - Python

Solution 3 - Python

Solution 4 - Python

how do I get a new line, after using float:left?

How to check if an element is visible with WebDriver

Attributions