Hisense UR9S is undoubtedly a show of strength from the Chinese manufacturer when it comes to luminance. On a synthetic test pattern the panel reached as much as 2600 nits, which is an impressive result. However, it is important to clearly separate laboratory results from filmic realities. In real material the UR9S behaves much more... restrained. Maximum brightness peaks in balanced scenes hover around 1500 nits. In demanding, dark shots, where algorithms must at once maintain deep black and precisely light small details, brightness can fall drastically, even to around 400 nits. The discrepancy between the chart and reality is therefore huge. This is a direct consequence of the conservative behaviour of the local dimming system. When a bright object occupies a large part of the frame, the system can easily sustain a high brightness. But in night scenes the priority becomes protecting black and combating the halo effect (unsightly glows around bright edges). To avoid contrast degradation, the TV drastically limits light output. Even so, the UR9S can still produce a very powerful, immersive HDR effect that impresses in bright, spectacular sequences.
Colour gamut coverage
On test patterns the Hisense UR9S performs excellently in terms of colour. Its coverage of the DCI-P3 gamut is almost 100%, and the wide BT.2020 as much as 93%. Those are results even the best QD-OLED TVs do not achieve. But again, synthetic measurements are one thing, films and series another. In real-world scenes the figures fell to 93% for DCI-P3 and 81% for BT.2020. That's still a great result, but the advantage of RGB Mini LED is no longer as dramatic as manufacturers claim in their marketing materials. One could even say that currently their capability is similar to TVs equipped with quantum dots, the so-called QLED. So why does this happen? To a large extent colour reproduction here depends on the specifics of how the backlight zones operate. When a strongly saturated colour sits next to white or another, more complex element, a single zone has to handle both parts of the picture at once. Under those conditions the backlight cannot maintain extreme saturation of a given colour on screen, because the emitted light takes on a more white-like character. In the UR9S this has been refined quite well, but still not enough for the TV to maintain such high colour saturation in every situation.
In terms of brightness the Samsung R95H shows that it is still a high-end TV, although the results are not always as spectacular as one might expect from a flagship Micro RGB model. In synthetic tests the TV can exceed 2400 nits, so it clearly has plenty of headroom. Crucially, it can maintain high brightness even when bright elements occupy a larger portion of the screen. In real cinematic scenes the situation is a little more complex. The R95H most often reaches around 1000–1400 nits, which still delivers a very good, powerful HDR effect. Bright sun, reflections or lights can look genuinely impressive, and the TV has enough power for HDR to be clearly distinguishable from standard SDR.
The problem appears mainly in very dark scenes with single, small light sources. Here the local dimming algorithm prioritises deep black and reducing halo over maximising the brightness of such elements. As a result, small highlights can be noticeably dimmed. Overall HDR therefore performs well, but not without limitations. The R95H has huge brightness headroom, especially in larger and brighter parts of the image, but in difficult dark scenes its capabilities are primarily limited by the way local dimming operates.
Colours
Colours were supposed to be the biggest revolution brought by RGB backlighting, and indeed the R95H shows considerable potential here. The assessment is not, however, as simple as synthetic measurements alone might suggest. On test patterns the TV performs superbly – BT.2020 coverage reaches almost 94%, and DCI-P3 98%, so particularly strongly saturated reds and greens can look truly impressive. The situation shifts somewhat when, instead of test patterns, we start measuring real film scenes. Then BT.2020 coverage falls to about 87%, and DCI-P3 to 93%. It seems that with more complex images the RGB zones are not always able to maintain the same high colour saturation as on simple charts. They remain saturated, but the advantage of the new backlight is no longer as large as the manufacturer’s figures might suggest.