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a seemingly simple question. but setting width and height of the ChartObject or its Shape doesnt do it, they both seem to be just some inner part of that white rectangle which is the embeded chart. also the ChartArea doesnt seem to be the object i'm interested in.

what i want is the exported file in the following example to have dimensions 800x600 (and i dont mean rescaling the exported image or trial and error until the size accidentally fits). there must be some object around the chart which i have overlooked.

Sub mwe()

Dim filepath As String
Dim sheet As Worksheet
Dim cObj As ChartObject
Dim c As Chart
Dim cShape As Shape
Dim cArea As chartArea

filepath = Left(ThisWorkbook.FullName, InStrRev(ThisWorkbook.FullName, "\"))
Set sheet = ActiveSheet
Set cObj = sheet.ChartObjects(1)
Set c = cObj.chart
Set cShape = sheet.Shapes(cObj.Name)
Set cArea = c.chartArea


cObj.Width = 800
cObj.Height = 400
MsgBox cArea.Width & " x " & cArea.Height  '793x393
c.Export filepath & "test1.png"            '1067x534, this is also the size on screen

cShape.Width = 800
cShape.Height = 400
MsgBox cArea.Width & " x " & cArea.Height  '794x393
c.Export filepath & "test2.png"            '1068x534, this is also the size on screen

End Sub

update:

it turns out the ChartObject and the Shape belonging to the same Chart already have the Worksheet as parent. but width and height are not specified in pixels as i assumed but in points, where 1 point = 1/72 inches.

and most of the time, windows seems to assume 96 pixels per inch.

thanks to steve's comment i am using the following now, which is quite reliable. a ChartObject that is not activated at the moment of its export seems to produce a file where width and height is 1 higher than it should be.

it remains to find out how to determine the factors px2ptH and px2ptV automatically.

Sub mwe()

Dim filepath As String
Dim sheet As Worksheet
Dim cObj As ChartObject
Dim c As Chart

Dim px2ptH As Double: px2ptH = 72 / 96
Dim px2ptV As Double: px2ptV = 72 / 96
Dim w As Double: w = 800 * px2ptH
Dim h As Double: h = 400 * px2ptV


filepath = Left(ThisWorkbook.FullName, InStrRev(ThisWorkbook.FullName, "\"))
Set sheet = ActiveSheet
Set cObj = sheet.ChartObjects(1)
Set c = cObj.Chart

'otherwise image size may deviate by 1x1
cObj.Activate

cObj.Width = w
cObj.Height = h

c.Export filepath & "test.png"

End Sub

update 2, the solution:

Declare Function GetDeviceCaps Lib "gdi32" (ByVal hDC As Long, ByVal nIndex As Long) As Long
Declare Function CreateIC Lib "gdi32" Alias "CreateICA" (ByVal lpDriverName As String, ByVal lpDeviceName As String, ByVal lpOutput As String, ByVal lpInitData As Long) As Long
Declare Function DeleteDC Lib "gdi32" (ByVal hDC As Long) As Long
Const LOGPIXELSX As Long = 88    'Logical pixels/inch in X
Const LOGPIXELSY As Long = 90    'Logical pixels/inch in Y

Sub setSizeInPix(co As ChartObject, pxW As Double, pxH As Double)
    Dim ppiH As Integer: ppiH = 72
    Dim ppiV As Integer: ppiV = 72
    Dim hDC As Long: hDC = CreateIC("DISPLAY", "", "", 0)
    Dim dpiH As Integer: dpiH = GetDeviceCaps(hDC, LOGPIXELSX)
    Dim dpiV As Integer: dpiV = GetDeviceCaps(hDC, LOGPIXELSY)
    DeleteDC hDC
    co.Width = pxW * ppiH / dpiH
    co.Height = pxH * ppiV / dpiV
End Sub


Sub mwe()
    Dim filepath As String: filepath = Left(ThisWorkbook.FullName, InStrRev(ThisWorkbook.FullName, "\"))
    Dim sheet As Worksheet: Set sheet = ActiveSheet
    Dim cObj As ChartObject: Set cObj = sheet.ChartObjects(1)
    Dim c As Chart: Set c = cObj.Chart
    setSizeInPix cObj, 800, 400
    cObj.Activate 'otherwise image size may deviate by 1x1
    c.Export filepath & "test.png"
End Sub
share|improve this question
3  
Why not adding debug.print cobj.parent.name just after setting cObj ? that should give you the right hint. –  iDevlop Jan 31 '13 at 15:46
    
I think the reason that you are not getting exactly 800 x 400 is that excel uses inches and not pixels and the accuracy is .01 inch and because of that you don get exactly 800 by 400! –  hoooman Jan 31 '13 at 15:54
1  
Since you've correctly indicated that the exported picture is sized based upon how it currently appears on the screen, you cannot realistically expect to be able to control the size of the file. Even if you zoom in or out on your sheet, this effects the size of the file. I do not believe you can change this without having a far more complicated solution. I'd suggest making sure you're dimensions are correct and then resizing the file as needed. –  Daniel Cook Jan 31 '13 at 16:29
    
@iDevlop: it gives the name of the worksheet. so it's not an enclosing object we're looking for. but what else is at play here? is the default unit for width and height not pixels but mm or something? –  peter Jan 31 '13 at 20:10
1  
The dimensions are in points, not pixels. 72 points to the inch. 800 pixels / 72 = 11.11111.... The size of the exported image will be the size in inches/the dpi of your computer's display, usually 96 (as it is in your case, but you can't always count on it ... use WIN API calls to find the current value) –  Steve Rindsberg Feb 1 '13 at 3:46

1 Answer 1

up vote 3 down vote accepted

The dimensions are in points, not pixels. 72 points to the inch.

800 pixels / 72 = 11.11111.... The size of the exported image will be the size in inches/the dpi of your computer's display, usually 96 (as it is in your case, but you can't always count on it ... use WIN API calls to find the current value)

Randy Birch has published code you can use to access the WinAPI calls to get screen resolution and more.

Go to http://vbnet.mvps.org/index.html and use the search feature on the left to look up GETDEVICECAPS

share|improve this answer
    
perfect, i added the solution to my question. –  peter Feb 3 '13 at 9:43

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