Hfrxdjt

Why doesn't the university give past final exams' answers?

Why do people think Winterfell crypts is the safest place for women, children & old people?

TV series episode where humans nuke aliens before decrypting their message that states they come in peace

How would it unbalance gameplay to rule that Weapon Master allows for picking a fighting style?

/bin/ls sorts differently than just ls

In search of the origins of term censor, I hit a dead end stuck with the greek term, to censor, λογοκρίνω

What *exactly* is electrical current, voltage, and resistance?

Did war bonds have better investment alternatives during WWII?

Co-worker works way more than he should

Simulate round-robin tournament draw

Could a cockatrice have parasitic embryos?

Feather, the Redeemed and Dire Fleet Daredevil

How was Lagrange appointed professor of mathematics so early?

Variable does not exist: sObjectType (Task.sObjectType)

Is it accepted to use working hours to read general interest books?

Is there a way to fake a method response using Mock or Stubs?

Will I have to go through TSA security when I return to the US after preclearance in Atlanta?

How to translate "red flag" into Spanish?

France's Public Holidays' Puzzle

All ASCII characters with a given bit count

What do you call an IPA symbol that lacks a name (e.g. ɲ)?

Was there ever a LEGO store in Miami International Airport?

What is the evidence that custom checks in Northern Ireland are going to result in violence?

Translate text contents of an existing file from lower to upper case and copy to a new file

Specify the range of GridLines

3

$begingroup$

Graphics[Circle[], Frame -> True, GridLines -> Automatic]

This puts grids across a 2D graphic (a circle here).

Is there any way to specify the range of values of GridLines? More specifically I want the part of GridLines that are inside the circle. That is the part of them that is outside the circle should be removed.

Thanks a lot!

grid-layouts grid-lines

share|improve this question

asked 7 hours ago

DimitrisDimitris

2,3381332

$endgroup$

add a comment | 

3

$begingroup$

Graphics[Circle[], Frame -> True, GridLines -> Automatic]

This puts grids across a 2D graphic (a circle here).

Is there any way to specify the range of values of GridLines? More specifically I want the part of GridLines that are inside the circle. That is the part of them that is outside the circle should be removed.

Thanks a lot!

grid-layouts grid-lines

share|improve this question

asked 7 hours ago

DimitrisDimitris

2,3381332

$endgroup$

add a comment | 

$begingroup$

Graphics[Circle[], Frame -> True, GridLines -> Automatic]

This puts grids across a 2D graphic (a circle here).

Is there any way to specify the range of values of GridLines? More specifically I want the part of GridLines that are inside the circle. That is the part of them that is outside the circle should be removed.

Thanks a lot!

grid-layouts grid-lines

share|improve this question

asked 7 hours ago

DimitrisDimitris

2,3381332

$endgroup$

Graphics[Circle[], Frame -> True, GridLines -> Automatic]

share|improve this question

asked 7 hours ago

DimitrisDimitris

2,3381332

share|improve this question

asked 7 hours ago

DimitrisDimitris

2,3381332

asked 7 hours ago

DimitrisDimitris

2,3381332

asked 7 hours ago

DimitrisDimitris

2,3381332

2 Answers
2

active

oldest

votes

4

$begingroup$

You can use a FilledCurve to create a graphics primitive with a hole in it. For example:

Graphics[
 
 White,
 FilledCurve[
 Line[Scaled[0,0],Scaled[1,0],Scaled[1,1],Scaled[0,1],Scaled[0,0]],
 Line@CirclePoints[.5, 100]
 ],
 Blue,
 Circle[0,0,.5]
 ,
 Frame -> True,
 GridLines -> Automatic
]

share|improve this answer

answered 6 hours ago

Carl WollCarl Woll

75.4k3100197

$endgroup$

• 
  
  
  

  
  

  
  
  
  
  
  

  
  $begingroup$
  This is perfect! Thank you very much. Is is possible also to modify the orientation of these grid lines (for instance by π/4 rad)?
  $endgroup$
  – Dimitris
  5 hours ago
  

  
  
  
  

add a comment | 

4

$begingroup$

You may also use parametric plot which can give more flexibility (like the pi/4 rotation you want):

pt = Table[
 ParametricPlot[x, x + a, x, 1/2 (-a - Sqrt[2 - a^2]), 
 1/2 (-a + Sqrt[2 - a^2])], a, -1, 1, .5], 
 Table[ParametricPlot[x, -x + a, x, 1/2 (a - Sqrt[2 - a^2]), 
 1/2 (a + Sqrt[2 - a^2])], a, -1, 1, .5] // Flatten;

Show[pt, Graphics[Circle[]], PlotRange -> All, Frame -> True]

where the x range for the gridlines are from

Solve[x + a == Sqrt[1 - x^2], x]
Solve[-x + a == Sqrt[1 - x^2], x]

share|improve this answer

answered 4 hours ago

egwene sedaiegwene sedai

1,8261021

$endgroup$

• 
  
  
  

  
  

  
  
  
  
  
  

  
  $begingroup$
  Thanks! How can we modify the code in order to have the center of circle (and the grids translated) to (0.5,0.5)?
  $endgroup$
  – Dimitris
  2 hours ago
  

  
  
  
  

add a comment | 

Your Answer

StackExchange.ready(function()
var channelOptions =
tags: "".split(" "),
id: "387"
;
initTagRenderer("".split(" "), "".split(" "), channelOptions);

StackExchange.using("externalEditor", function()
// Have to fire editor after snippets, if snippets enabled
if (StackExchange.settings.snippets.snippetsEnabled)
StackExchange.using("snippets", function()
createEditor();
);

else
createEditor();

);

function createEditor()
StackExchange.prepareEditor(
heartbeatType: 'answer',
autoActivateHeartbeat: false,
convertImagesToLinks: false,
noModals: true,
showLowRepImageUploadWarning: true,
reputationToPostImages: null,
bindNavPrevention: true,
postfix: "",
imageUploader:
brandingHtml: "Powered by u003ca class="icon-imgur-white" href="https://imgur.com/"u003eu003c/au003e",
contentPolicyHtml: "User contributions licensed under u003ca href="https://creativecommons.org/licenses/by-sa/3.0/"u003ecc by-sa 3.0 with attribution requiredu003c/au003e u003ca href="https://stackoverflow.com/legal/content-policy"u003e(content policy)u003c/au003e",
allowUrls: true
,
onDemand: true,
discardSelector: ".discard-answer"
,immediatelyShowMarkdownHelp:true
);



);

draft saved

draft discarded

Sign up or log in

StackExchange.ready(function ()
StackExchange.helpers.onClickDraftSave('#login-link');
);

Sign up using Google

Sign up using Facebook

Sign up using Email and Password

Post as a guest

Name

Email

Required, but never shown

StackExchange.ready(
function ()
StackExchange.openid.initPostLogin('.new-post-login', 'https%3a%2f%2fmathematica.stackexchange.com%2fquestions%2f195844%2fspecify-the-range-of-gridlines%23new-answer', 'question_page');

);

Post as a guest

Name

Email

Required, but never shown

4

$begingroup$

You can use a FilledCurve to create a graphics primitive with a hole in it. For example:

Graphics[
 
 White,
 FilledCurve[
 Line[Scaled[0,0],Scaled[1,0],Scaled[1,1],Scaled[0,1],Scaled[0,0]],
 Line@CirclePoints[.5, 100]
 ],
 Blue,
 Circle[0,0,.5]
 ,
 Frame -> True,
 GridLines -> Automatic
]

share|improve this answer

answered 6 hours ago

Carl WollCarl Woll

75.4k3100197

$endgroup$

• 
  
  
  

  
  

  
  
  
  
  
  

  
  $begingroup$
  This is perfect! Thank you very much. Is is possible also to modify the orientation of these grid lines (for instance by π/4 rad)?
  $endgroup$
  – Dimitris
  5 hours ago
  

  
  
  
  

add a comment | 

4

$begingroup$

You can use a FilledCurve to create a graphics primitive with a hole in it. For example:

Graphics[
 
 White,
 FilledCurve[
 Line[Scaled[0,0],Scaled[1,0],Scaled[1,1],Scaled[0,1],Scaled[0,0]],
 Line@CirclePoints[.5, 100]
 ],
 Blue,
 Circle[0,0,.5]
 ,
 Frame -> True,
 GridLines -> Automatic
]

share|improve this answer

answered 6 hours ago

Carl WollCarl Woll

75.4k3100197

$endgroup$

• 
  
  
  

  
  

  
  
  
  
  
  

  
  $begingroup$
  This is perfect! Thank you very much. Is is possible also to modify the orientation of these grid lines (for instance by π/4 rad)?
  $endgroup$
  – Dimitris
  5 hours ago
  

  
  
  
  

add a comment | 

$begingroup$

You can use a FilledCurve to create a graphics primitive with a hole in it. For example:

Graphics[
 
 White,
 FilledCurve[
 Line[Scaled[0,0],Scaled[1,0],Scaled[1,1],Scaled[0,1],Scaled[0,0]],
 Line@CirclePoints[.5, 100]
 ],
 Blue,
 Circle[0,0,.5]
 ,
 Frame -> True,
 GridLines -> Automatic
]

share|improve this answer

answered 6 hours ago

Carl WollCarl Woll

75.4k3100197

$endgroup$

Graphics[
 
 White,
 FilledCurve[
 Line[Scaled[0,0],Scaled[1,0],Scaled[1,1],Scaled[0,1],Scaled[0,0]],
 Line@CirclePoints[.5, 100]
 ],
 Blue,
 Circle[0,0,.5]
 ,
 Frame -> True,
 GridLines -> Automatic
]

share|improve this answer

answered 6 hours ago

Carl WollCarl Woll

75.4k3100197

answered 6 hours ago

Carl WollCarl Woll

75.4k3100197

answered 6 hours ago

Carl WollCarl Woll

75.4k3100197

4

$begingroup$

You may also use parametric plot which can give more flexibility (like the pi/4 rotation you want):

pt = Table[
 ParametricPlot[x, x + a, x, 1/2 (-a - Sqrt[2 - a^2]), 
 1/2 (-a + Sqrt[2 - a^2])], a, -1, 1, .5], 
 Table[ParametricPlot[x, -x + a, x, 1/2 (a - Sqrt[2 - a^2]), 
 1/2 (a + Sqrt[2 - a^2])], a, -1, 1, .5] // Flatten;

Show[pt, Graphics[Circle[]], PlotRange -> All, Frame -> True]

where the x range for the gridlines are from

Solve[x + a == Sqrt[1 - x^2], x]
Solve[-x + a == Sqrt[1 - x^2], x]

share|improve this answer

answered 4 hours ago

egwene sedaiegwene sedai

1,8261021

$endgroup$

• 
  
  
  

  
  

  
  
  
  
  
  

  
  $begingroup$
  Thanks! How can we modify the code in order to have the center of circle (and the grids translated) to (0.5,0.5)?
  $endgroup$
  – Dimitris
  2 hours ago
  

  
  
  
  

add a comment | 

4

$begingroup$

You may also use parametric plot which can give more flexibility (like the pi/4 rotation you want):

pt = Table[
 ParametricPlot[x, x + a, x, 1/2 (-a - Sqrt[2 - a^2]), 
 1/2 (-a + Sqrt[2 - a^2])], a, -1, 1, .5], 
 Table[ParametricPlot[x, -x + a, x, 1/2 (a - Sqrt[2 - a^2]), 
 1/2 (a + Sqrt[2 - a^2])], a, -1, 1, .5] // Flatten;

Show[pt, Graphics[Circle[]], PlotRange -> All, Frame -> True]

where the x range for the gridlines are from

Solve[x + a == Sqrt[1 - x^2], x]
Solve[-x + a == Sqrt[1 - x^2], x]

share|improve this answer

answered 4 hours ago

egwene sedaiegwene sedai

1,8261021

$endgroup$

• 
  
  
  

  
  

  
  
  
  
  
  

  
  $begingroup$
  Thanks! How can we modify the code in order to have the center of circle (and the grids translated) to (0.5,0.5)?
  $endgroup$
  – Dimitris
  2 hours ago
  

  
  
  
  

add a comment | 

$begingroup$

You may also use parametric plot which can give more flexibility (like the pi/4 rotation you want):

pt = Table[
 ParametricPlot[x, x + a, x, 1/2 (-a - Sqrt[2 - a^2]), 
 1/2 (-a + Sqrt[2 - a^2])], a, -1, 1, .5], 
 Table[ParametricPlot[x, -x + a, x, 1/2 (a - Sqrt[2 - a^2]), 
 1/2 (a + Sqrt[2 - a^2])], a, -1, 1, .5] // Flatten;

Show[pt, Graphics[Circle[]], PlotRange -> All, Frame -> True]

where the x range for the gridlines are from

Solve[x + a == Sqrt[1 - x^2], x]
Solve[-x + a == Sqrt[1 - x^2], x]

share|improve this answer

answered 4 hours ago

egwene sedaiegwene sedai

1,8261021

$endgroup$

pt = Table[
 ParametricPlot[x, x + a, x, 1/2 (-a - Sqrt[2 - a^2]), 
 1/2 (-a + Sqrt[2 - a^2])], a, -1, 1, .5], 
 Table[ParametricPlot[x, -x + a, x, 1/2 (a - Sqrt[2 - a^2]), 
 1/2 (a + Sqrt[2 - a^2])], a, -1, 1, .5] // Flatten;

Show[pt, Graphics[Circle[]], PlotRange -> All, Frame -> True]

Solve[x + a == Sqrt[1 - x^2], x]
Solve[-x + a == Sqrt[1 - x^2], x]

share|improve this answer

answered 4 hours ago

egwene sedaiegwene sedai

1,8261021

answered 4 hours ago

egwene sedaiegwene sedai

1,8261021

answered 4 hours ago

egwene sedaiegwene sedai

1,8261021