Kodak EasyShare LS443 vs. Fujifilm FinePix 1300
Comparison
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| Kodak EasyShare LS443 | Fujifilm FinePix 1300 | ||||
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Megapixels
4.00
1.20
Max. image resolution
2448 x 1632
1280 x 960
Sensor
Sensor type
CCD
CCD
Sensor size
1/2.7" (~ 5.33 x 4 mm)
1/2.7" (~ 5.33 x 4 mm)
Sensor size comparison
Sensor size is generally a good indicator of the quality of the camera.
Sensors can vary greatly in size. As a general rule, the bigger the
sensor, the better the image quality.
Bigger sensors are more effective because they have more surface area to capture light. An important factor when comparing digital cameras is also camera generation. Generally, newer sensors will outperform the older.
Learn more about sensor sizes »
Bigger sensors are more effective because they have more surface area to capture light. An important factor when comparing digital cameras is also camera generation. Generally, newer sensors will outperform the older.
Learn more about sensor sizes »
Actual sensor size
Note: Actual size is set to screen → change »
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| Kodak EasyShare LS443 | Fujifilm FinePix 1300 | |
Surface area:
| 21.32 mm² | vs | 21.32 mm² |
Difference: 0 mm² (0%)
LS443 and 1300 sensors are the same size.
Note: You are comparing cameras of different generations.
There is a 2 year gap between Kodak LS443 (2002) and Fujifilm 1300 (2000).
All things being equal, newer sensor generations generally outperform the older.
Pixel pitch tells you the distance from the center of one pixel (photosite) to the center of the next. It tells you how close the pixels are to each other.
The bigger the pixel pitch, the further apart they are and the bigger each pixel is. Bigger pixels tend to have better signal to noise ratio and greater dynamic range.
The bigger the pixel pitch, the further apart they are and the bigger each pixel is. Bigger pixels tend to have better signal to noise ratio and greater dynamic range.
Pixel or photosite area affects how much light per pixel can be gathered.
The larger it is the more light can be collected by a single pixel.
Larger pixels have the potential to collect more photons, resulting in greater dynamic range, while smaller pixels provide higher resolutions (more detail) for a given sensor size.
Larger pixels have the potential to collect more photons, resulting in greater dynamic range, while smaller pixels provide higher resolutions (more detail) for a given sensor size.
Relative pixel sizes:
vs
Pixel area difference: 12.47 µm² (234%)
A pixel on Fujifilm 1300 sensor is approx. 234% bigger than a pixel on Kodak LS443.
Pixel density tells you how many million pixels fit or would fit in one
square cm of the sensor.
Higher pixel density means smaller pixels and lower pixel density means larger pixels.
Higher pixel density means smaller pixels and lower pixel density means larger pixels.
To learn about the accuracy of these numbers,
click here.
Specs
Kodak LS443
Fujifilm 1300
Total megapixels
4.10
1.30
Effective megapixels
4.00
1.20
Optical zoom
3x
1x
Digital zoom
Yes
Yes
ISO sensitivity
Auto, 100, 200, 400
125
RAW
Manual focus
Normal focus range
70 cm
80 cm
Macro focus range
13 cm
8 cm
Focal length (35mm equiv.)
35 - 105 mm
38 mm
Aperture priority
No
No
Max. aperture
f2.8 - f9.6
f4.6
Metering
Multi, Center-weighted, Spot
64-segment
Exposure compensation
±2 EV (in 1/2 EV steps)
-0.9 - +1.5 EV (in 1/3 EV steps)
Shutter priority
No
No
Min. shutter speed
4 sec
1/2 sec
Max. shutter speed
1/1000 sec
1/1000 sec
Built-in flash
External flash
Viewfinder
Optical (tunnel)
Optical (tunnel)
White balance presets
4
7
Screen size
1.8"
1.6"
Screen resolution
134,000 dots
130,000 dots
Video capture
Max. video resolution
Storage types
SD/MMC card, Internal
SmartMedia
USB
USB 1.0
USB 1.0
HDMI
Wireless
GPS
Battery
Kodak Lithium-Ion, dock (included)
AA (4) batteries (NiMH recommended)
Weight
260 g
240 g
Dimensions
109 x 62 x 38 mm
110 x 77 x 39 mm
Year
2002
2000
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Diagonal
Diagonal is calculated by the use of Pythagorean theorem:
where w = sensor width and h = sensor height
| Diagonal = √ | w² + h² |
Kodak LS443 diagonal
The diagonal of LS443 sensor is not 1/2.7 or 0.37" (9.4 mm) as you might expect, but approximately two thirds of
that value - 6.66 mm. If you want to know why, see
sensor sizes.
w = 5.33 mm
h = 4.00 mm
w = 5.33 mm
h = 4.00 mm
| Diagonal = √ | 5.33² + 4.00² | = 6.66 mm |
Fujifilm 1300 diagonal
The diagonal of 1300 sensor is not 1/2.7 or 0.37" (9.4 mm) as you might expect, but approximately two thirds of
that value - 6.66 mm. If you want to know why, see
sensor sizes.
w = 5.33 mm
h = 4.00 mm
w = 5.33 mm
h = 4.00 mm
| Diagonal = √ | 5.33² + 4.00² | = 6.66 mm |
Surface area
Surface area is calculated by multiplying the width and the height of a sensor.
LS443 sensor area
Width = 5.33 mm
Height = 4.00 mm
Surface area = 5.33 × 4.00 = 21.32 mm²
Height = 4.00 mm
Surface area = 5.33 × 4.00 = 21.32 mm²
1300 sensor area
Width = 5.33 mm
Height = 4.00 mm
Surface area = 5.33 × 4.00 = 21.32 mm²
Height = 4.00 mm
Surface area = 5.33 × 4.00 = 21.32 mm²
Pixel pitch
Pixel pitch is the distance from the center of one pixel to the center of the
next measured in micrometers (µm). It can be calculated with the following formula:
| Pixel pitch = | sensor width in mm | × 1000 |
| sensor resolution width in pixels |
LS443 pixel pitch
Sensor width = 5.33 mm
Sensor resolution width = 2306 pixels
Sensor resolution width = 2306 pixels
| Pixel pitch = | 5.33 | × 1000 | = 2.31 µm |
| 2306 |
1300 pixel pitch
Sensor width = 5.33 mm
Sensor resolution width = 1264 pixels
Sensor resolution width = 1264 pixels
| Pixel pitch = | 5.33 | × 1000 | = 4.22 µm |
| 1264 |
Pixel area
The area of one pixel can be calculated by simply squaring the pixel pitch:
You could also divide sensor surface area with effective megapixels:
Pixel area = pixel pitch²
You could also divide sensor surface area with effective megapixels:
| Pixel area = | sensor surface area in mm² |
| effective megapixels |
LS443 pixel area
Pixel pitch = 2.31 µm
Pixel area = 2.31² = 5.34 µm²
Pixel area = 2.31² = 5.34 µm²
1300 pixel area
Pixel pitch = 4.22 µm
Pixel area = 4.22² = 17.81 µm²
Pixel area = 4.22² = 17.81 µm²
Pixel density
Pixel density can be calculated with the following formula:
One could also use this formula:
| Pixel density = ( | sensor resolution width in pixels | )² / 1000000 |
| sensor width in cm |
One could also use this formula:
| Pixel density = | effective megapixels × 1000000 | / 10000 |
| sensor surface area in mm² |
LS443 pixel density
Sensor resolution width = 2306 pixels
Sensor width = 0.533 cm
Pixel density = (2306 / 0.533)² / 1000000 = 18.72 MP/cm²
Sensor width = 0.533 cm
Pixel density = (2306 / 0.533)² / 1000000 = 18.72 MP/cm²
1300 pixel density
Sensor resolution width = 1264 pixels
Sensor width = 0.533 cm
Pixel density = (1264 / 0.533)² / 1000000 = 5.62 MP/cm²
Sensor width = 0.533 cm
Pixel density = (1264 / 0.533)² / 1000000 = 5.62 MP/cm²
Sensor resolution
Sensor resolution is calculated from sensor size and effective megapixels. It's slightly higher
than maximum (not interpolated) image resolution which is usually stated on camera specifications.
Sensor resolution is used in pixel pitch, pixel area, and pixel density formula.
For sake of simplicity, we're going to calculate it in 3 stages.
1. First we need to find the ratio between horizontal and vertical length by dividing the former with the latter (aspect ratio). It's usually 1.33 (4:3) or 1.5 (3:2), but not always.
2. With the ratio (r) known we can calculate the X from the formula below, where X is a vertical number of pixels:
3. To get sensor resolution we then multiply X with the corresponding ratio:
Resolution horizontal: X × r
Resolution vertical: X
1. First we need to find the ratio between horizontal and vertical length by dividing the former with the latter (aspect ratio). It's usually 1.33 (4:3) or 1.5 (3:2), but not always.
2. With the ratio (r) known we can calculate the X from the formula below, where X is a vertical number of pixels:
| (X × r) × X = effective megapixels × 1000000 → |
|
Resolution horizontal: X × r
Resolution vertical: X
LS443 sensor resolution
Sensor width = 5.33 mm
Sensor height = 4.00 mm
Effective megapixels = 4.00
Resolution horizontal: X × r = 1734 × 1.33 = 2306
Resolution vertical: X = 1734
Sensor resolution = 2306 x 1734
Sensor height = 4.00 mm
Effective megapixels = 4.00
| r = 5.33/4.00 = 1.33 |
|
Resolution vertical: X = 1734
Sensor resolution = 2306 x 1734
1300 sensor resolution
Sensor width = 5.33 mm
Sensor height = 4.00 mm
Effective megapixels = 1.20
Resolution horizontal: X × r = 950 × 1.33 = 1264
Resolution vertical: X = 950
Sensor resolution = 1264 x 950
Sensor height = 4.00 mm
Effective megapixels = 1.20
| r = 5.33/4.00 = 1.33 |
|
Resolution vertical: X = 950
Sensor resolution = 1264 x 950
Crop factor
Crop factor or focal length multiplier is calculated by dividing the diagonal
of 35 mm film (43.27 mm) with the diagonal of the sensor.
| Crop factor = | 43.27 mm |
| sensor diagonal in mm |
LS443 crop factor
Sensor diagonal in mm = 6.66 mm
| Crop factor = | 43.27 | = 6.5 |
| 6.66 |
1300 crop factor
Sensor diagonal in mm = 6.66 mm
| Crop factor = | 43.27 | = 6.5 |
| 6.66 |
35 mm equivalent aperture
Equivalent aperture (in 135 film terms) is calculated by multiplying lens aperture
with crop factor (a.k.a. focal length multiplier).
LS443 equivalent aperture
Crop factor = 6.5
Aperture = f2.8 - f9.6
35-mm equivalent aperture = (f2.8 - f9.6) × 6.5 = f18.2 - f62.4
Aperture = f2.8 - f9.6
35-mm equivalent aperture = (f2.8 - f9.6) × 6.5 = f18.2 - f62.4
1300 equivalent aperture
Crop factor = 6.5
Aperture = f4.6
35-mm equivalent aperture = (f4.6) × 6.5 = f29.9
Aperture = f4.6
35-mm equivalent aperture = (f4.6) × 6.5 = f29.9
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