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Giving Plot options defined outside of the Plot expression

All curves in plot have the same style. Cannot be fixed with Evaluate[]Force Plot Area size to be equal excluding axesWhen is Evaluate needed within function arguments?How do I get a plot with a certain size?how can I change the length/size ticks in a framed plot?DateListPlot in webMathematica doesn't show FrameTicks properlyHow can one control the style of the cut off markers on a plot?How to set labelled frame ticks on a plotAbout the OptionsPattern[] approach of inheriting OptionsI don't understand the Epilog function

3

$begingroup$

How can I give Plot formating expressions on a separate line just like ListPlot?

When I use the following code with ListPlot, it produces a plot without any errors:

graphs = ImageSize -> Full, Frame -> True;
ListPlot[Table[x, x, 1, 2, .01], graphs]

However, the same thing doesn't work for Plot:

graphs = ImageSize -> Full, Frame -> True;
Plot[x, x, 1, 2, graphs]

Why? What is the simple notation change that I need to make it work?

plotting options

share|improve this question

edited 41 mins ago

axsvl77

asked 5 hours ago

axsvl77axsvl77

383212

$endgroup$

add a comment | 

3

$begingroup$

How can I give Plot formating expressions on a separate line just like ListPlot?

When I use the following code with ListPlot, it produces a plot without any errors:

graphs = ImageSize -> Full, Frame -> True;
ListPlot[Table[x, x, 1, 2, .01], graphs]

However, the same thing doesn't work for Plot:

graphs = ImageSize -> Full, Frame -> True;
Plot[x, x, 1, 2, graphs]

Why? What is the simple notation change that I need to make it work?

plotting options

share|improve this question

edited 41 mins ago

axsvl77

asked 5 hours ago

axsvl77axsvl77

383212

$endgroup$

add a comment | 

$begingroup$

How can I give Plot formating expressions on a separate line just like ListPlot?

When I use the following code with ListPlot, it produces a plot without any errors:

graphs = ImageSize -> Full, Frame -> True;
ListPlot[Table[x, x, 1, 2, .01], graphs]

However, the same thing doesn't work for Plot:

graphs = ImageSize -> Full, Frame -> True;
Plot[x, x, 1, 2, graphs]

Why? What is the simple notation change that I need to make it work?

plotting options

share|improve this question

edited 41 mins ago

axsvl77

asked 5 hours ago

axsvl77axsvl77

383212

$endgroup$

graphs = ImageSize -> Full, Frame -> True;
ListPlot[Table[x, x, 1, 2, .01], graphs]

graphs = ImageSize -> Full, Frame -> True;
Plot[x, x, 1, 2, graphs]

share|improve this question

edited 41 mins ago

axsvl77

asked 5 hours ago

axsvl77axsvl77

383212

share|improve this question

edited 41 mins ago

axsvl77

asked 5 hours ago

axsvl77axsvl77

383212

asked 5 hours ago

axsvl77axsvl77

383212

asked 5 hours ago

axsvl77axsvl77

383212

2 Answers
2

active

oldest

votes

3

$begingroup$

You can use

Plot[x, x, 1, 2, Evaluate@graphs]

Why?

The reason Plot[x, x, 1, 2, graphs] doesn't work and ListPlot[Table[x, x, 1, 2, .01], graphs]does is that Plot has attribute HoldAll ("all arguments (..) maintained in an unevaluated form")

Attributes[Plot]

HoldAll, Protected, ReadProtected

whereas ListPlot doesn't:

Attributes[ListPlot]

Protected, ReadProtected

share|improve this answer

edited 4 hours ago

answered 5 hours ago

kglrkglr

188k10204422

$endgroup$

• 
  
  
  

  
  

  
  
  
  
  
  

  
  $begingroup$
  Alternatively, you can inject graph using With as in m_goldberg's answer or using Plot[x, x, 1, 2, #] &@graphs.
  $endgroup$
  – kglr
  33 mins ago
  

  
  
  
  

add a comment | 

1

$begingroup$

You can also use With because it makes the needed substitution before Plot sees any of its arguments.

options = ImageSize -> Full, Frame -> True;
With[opts = options, Plot[x, x, 1, 2, opts]

share|improve this answer

answered 1 hour ago

m_goldbergm_goldberg

87.4k872198

$endgroup$

add a comment | 

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3

$begingroup$

You can use

Plot[x, x, 1, 2, Evaluate@graphs]

Why?

The reason Plot[x, x, 1, 2, graphs] doesn't work and ListPlot[Table[x, x, 1, 2, .01], graphs]does is that Plot has attribute HoldAll ("all arguments (..) maintained in an unevaluated form")

Attributes[Plot]

HoldAll, Protected, ReadProtected

whereas ListPlot doesn't:

Attributes[ListPlot]

Protected, ReadProtected

share|improve this answer

edited 4 hours ago

answered 5 hours ago

kglrkglr

188k10204422

$endgroup$

• 
  
  
  

  
  

  
  
  
  
  
  

  
  $begingroup$
  Alternatively, you can inject graph using With as in m_goldberg's answer or using Plot[x, x, 1, 2, #] &@graphs.
  $endgroup$
  – kglr
  33 mins ago
  

  
  
  
  

add a comment | 

3

$begingroup$

You can use

Plot[x, x, 1, 2, Evaluate@graphs]

Why?

The reason Plot[x, x, 1, 2, graphs] doesn't work and ListPlot[Table[x, x, 1, 2, .01], graphs]does is that Plot has attribute HoldAll ("all arguments (..) maintained in an unevaluated form")

Attributes[Plot]

HoldAll, Protected, ReadProtected

whereas ListPlot doesn't:

Attributes[ListPlot]

Protected, ReadProtected

share|improve this answer

edited 4 hours ago

answered 5 hours ago

kglrkglr

188k10204422

$endgroup$

• 
  
  
  

  
  

  
  
  
  
  
  

  
  $begingroup$
  Alternatively, you can inject graph using With as in m_goldberg's answer or using Plot[x, x, 1, 2, #] &@graphs.
  $endgroup$
  – kglr
  33 mins ago
  

  
  
  
  

add a comment | 

$begingroup$

You can use

Plot[x, x, 1, 2, Evaluate@graphs]

Why?

The reason Plot[x, x, 1, 2, graphs] doesn't work and ListPlot[Table[x, x, 1, 2, .01], graphs]does is that Plot has attribute HoldAll ("all arguments (..) maintained in an unevaluated form")

Attributes[Plot]

HoldAll, Protected, ReadProtected

whereas ListPlot doesn't:

Attributes[ListPlot]

Protected, ReadProtected

share|improve this answer

edited 4 hours ago

answered 5 hours ago

kglrkglr

188k10204422

$endgroup$

Plot[x, x, 1, 2, Evaluate@graphs]

Attributes[Plot]

Attributes[ListPlot]

share|improve this answer

edited 4 hours ago

answered 5 hours ago

kglrkglr

188k10204422

answered 5 hours ago

kglrkglr

188k10204422

answered 5 hours ago

kglrkglr

188k10204422

1

$begingroup$

You can also use With because it makes the needed substitution before Plot sees any of its arguments.

options = ImageSize -> Full, Frame -> True;
With[opts = options, Plot[x, x, 1, 2, opts]

share|improve this answer

answered 1 hour ago

m_goldbergm_goldberg

87.4k872198

$endgroup$

add a comment | 

1

$begingroup$

You can also use With because it makes the needed substitution before Plot sees any of its arguments.

options = ImageSize -> Full, Frame -> True;
With[opts = options, Plot[x, x, 1, 2, opts]

share|improve this answer

answered 1 hour ago

m_goldbergm_goldberg

87.4k872198

$endgroup$

add a comment | 

$begingroup$

You can also use With because it makes the needed substitution before Plot sees any of its arguments.

options = ImageSize -> Full, Frame -> True;
With[opts = options, Plot[x, x, 1, 2, opts]

share|improve this answer

answered 1 hour ago

m_goldbergm_goldberg

87.4k872198

$endgroup$

options = ImageSize -> Full, Frame -> True;
With[opts = options, Plot[x, x, 1, 2, opts]

share|improve this answer

answered 1 hour ago

m_goldbergm_goldberg

87.4k872198

answered 1 hour ago

m_goldbergm_goldberg

87.4k872198

answered 1 hour ago

m_goldbergm_goldberg

87.4k872198